Compare commits

...

96 Commits

Author SHA1 Message Date
Andrey Melnikov
c984ff34d5 Merge pull request #961 from Vafilor/feat/remove.community.restrictions
fix: remove namespace creation restriction
2021-10-28 16:12:59 -07:00
Andrey Melnikov
5283b7beb6 fix: add missing manifests and incorrect cvat_1.6.0 version name in metadata 2021-10-28 16:08:31 -07:00
Andrey Melnikov
2cddf4a88a fix: remove namespace creation restriction 2021-10-28 15:50:39 -07:00
Andrey Melnikov
dd3d7f6632 Merge pull request #960 from Vafilor/feat/new.cvat
feat: cvat 1.6.0 workspace migration
2021-10-28 14:47:57 -07:00
Andrey Melnikov
4d1aff5c5b fix: method comments 2021-10-28 14:45:55 -07:00
Andrey Melnikov
719613ecd4 feat: cvat 1.6.0 workspace migration 2021-10-28 14:44:29 -07:00
Andrey Melnikov
09b854a434 Merge pull request #959 from Vafilor/feat/create.namespace.stub
feat: stub out create namespace
2021-10-27 10:09:19 -07:00
Andrey Melnikov
493ca51682 fix: docs for CreateNamespace 2021-10-27 09:31:07 -07:00
Andrey Melnikov
6407c2a7b4 feat: add create namespace code 2021-10-27 09:24:28 -07:00
Andrey Melnikov
62896b2f52 fix: Deny create namespace permission in community edition 2021-10-26 15:47:13 -07:00
Andrey Melnikov
d934163fc8 fix: code formatting and docs 2021-10-26 15:37:21 -07:00
Andrey Melnikov
e991102d85 Merge pull request #958 from Vafilor/feat/cache.values
feat: cache artifactRepositoryType
2021-10-26 15:32:59 -07:00
Andrey Melnikov
467f7f71dd fix: add missing comment 2021-10-26 15:29:12 -07:00
Andrey Melnikov
f1c0f0d31e feat: stub out create namespace and add supporting methods from enterprise version 2021-10-26 15:26:23 -07:00
Andrey Melnikov
11fc055ee3 feat: cache artifactRepositoryType 2021-10-26 15:23:47 -07:00
Andrey Melnikov
d9c79370e9 Merge pull request #957 from Vafilor/feat/update.migrations
feat: updated go migration data to have metadata
2021-10-26 15:19:19 -07:00
Andrey Melnikov
98f78d453a feat: updated go migration data to have metadata to make it easier to get all of the information from one file 2021-10-26 15:14:43 -07:00
Andrey Melnikov
700b3bd512 Merge pull request #955 from Vafilor/feat/add.serving.variables
feat: add onepanel serving url to workspaces
2021-10-07 12:29:05 -07:00
Andrey Melnikov
3abdc54d3c feat: add onepanel serving url to workspaces 2021-10-07 12:24:01 -07:00
Rush Tehrani
f570a710ba Update README.md 2021-09-17 09:40:54 -07:00
Rush Tehrani
c922b708fc Merge pull request #953 from Vafilor/fix/workflow.volumes
fix: workflow volumes don't delete on failed workflow
2021-09-08 12:57:56 -07:00
Andrey Melnikov
fc9669d757 fix: add PodCompletion volume claim gc by default to workflows. This will clean up the volumes if the workflow fails 2021-09-08 12:47:23 -07:00
rushtehrani
8eeb90d3f1 update features image in README 2021-08-19 12:22:57 -07:00
rushtehrani
c25dfce84f Update features image 2021-08-18 11:09:48 -07:00
Andrey Melnikov
5705bfa47f Merge pull request #943 from Vafilor/feat/model.deployment
feat: Inference Service API
2021-08-12 10:58:15 -07:00
Andrey Melnikov
44a78effed feat: Create response for inference service now returns information about the status 2021-08-12 10:05:04 -07:00
Andrey Melnikov
a8985a7878 chore: codacy docs 2021-08-11 17:08:24 -07:00
Andrey Melnikov
69006309b4 feat: allow onepanel-access-token in addition to the onepanel-auth-token 2021-08-11 16:29:37 -07:00
Andrey Melnikov
22b3d984ec clean: simplify marshaling of InferenceService 2021-08-11 16:29:10 -07:00
Andrey Melnikov
4528927463 feat: updated endpoint to get the status to include predictor url 2021-08-11 11:40:18 -07:00
Andrey Melnikov
edf7a30f64 feat: support both resource requests and limits for InferenceService 2021-08-10 14:47:32 -07:00
Andrey Melnikov
51fb86e3fe feat: simplify API for model services and rename it to inferenceservice 2021-08-10 13:36:44 -07:00
Andrey Melnikov
d8e0e5c968 feat: add defaults for model deployment and add get status and delete endpoints 2021-08-10 09:54:17 -07:00
Andrey Melnikov
75719caec9 feat: model deployment API 2021-08-06 16:07:27 -07:00
Andrey Melnikov
147c937252 Merge pull request #940 from Vafilor/feat/full.node.resources
feat: add optional logic to capture the entire node
2021-08-03 09:01:52 -07:00
Andrey Melnikov
e0f3f81563 feat: add optional logic to capture the entire node 2021-08-02 16:43:12 -07:00
Andrey Melnikov
0021249464 Merge pull request #938 from Vafilor/feat/expose.minio
feat: separate files api and support presigned urls
2021-08-02 15:11:34 -07:00
Andrey Melnikov
7235951ec2 chore: codacy docs 2021-08-02 15:08:09 -07:00
Andrey Melnikov
f843074a3f chore: codacy - Url -> URL 2021-07-30 14:21:15 -07:00
Andrey Melnikov
8e6ef8d3eb feat: updated presigned url response to include the file size so client can decide if it can be displayed or not 2021-07-30 14:01:38 -07:00
Andrey Melnikov
d226028b33 feat: separate files from workflow and add endpoint to get pre-signed url 2021-07-30 12:52:50 -07:00
Andrey Melnikov
82585d1011 Merge pull request #936 from Vafilor/fix/wrong.namespace
fix: issue where wrong namespace was parsed in certain cases
2021-07-27 11:10:34 -07:00
Andrey Melnikov
193dbe156e fix: issue where wrong namespace was obtained from certain urls for workspaces/models 2021-07-27 11:05:26 -07:00
Rush Tehrani
5ebccbd811 Update summary and Argo link 2021-07-22 11:05:43 -07:00
Andrey Melnikov
023fb50046 Merge pull request #934 from Vafilor/fix/s3.files
fix: s3 not listing files in file browser
2021-07-20 13:18:13 -07:00
Andrey Melnikov
abd8d3cde0 Merge pull request #933 from Vafilor/feat/filesyncer.update.migrations
feat: added migrations to update filesyncer to version 1.0.0
2021-07-20 13:13:58 -07:00
Andrey Melnikov
64d6dde1aa Merge branch 'fix/s3.files' of github.com:Vafilor/core into fix/s3.files 2021-07-20 13:08:21 -07:00
Andrey Melnikov
d0d68470dd fix: issue where s3 storage would not list files (but would list folders) 2021-07-20 13:07:38 -07:00
Andrey Melnikov
6f8e3f56e7 chore: documenting migrations 2021-07-20 13:07:17 -07:00
Andrey Melnikov
2b47ad7092 fix: issue where s3 storage would not list files (but would list folders) 2021-07-20 13:01:14 -07:00
Andrey Melnikov
66e2418424 feat: added migrations to update filesyncer to version 1.0.0 2021-07-20 13:00:41 -07:00
Andrey Melnikov
5b6979302e Merge pull request #930 from Vafilor/feat/storage.pagination
feat: added pagination to listing files
2021-07-16 16:02:22 -07:00
Andrey Melnikov
afb98c295b feat: added pagination to listing files 2021-07-16 15:33:09 -07:00
Andrey Melnikov
1fb0d10b7c Merge pull request #925 from Vafilor/feat/service.availability
feat: check if kfserving is set up
2021-07-12 15:27:16 -07:00
Andrey Melnikov
c4438bfe0d feat: check if kfserving is set up 2021-07-12 12:46:11 -07:00
Rush Tehrani
8329706f22 Update README.md 2021-07-08 14:01:22 -07:00
Andrey Melnikov
09be35b2d6 fix: don't publish image on any md file changes or github workflow changes 2021-07-08 12:23:21 -07:00
Andrey Melnikov
e4d83903c7 fix: don't publish image on README changess 2021-07-08 12:15:19 -07:00
Rush Tehrani
69bc6e3df1 Update README.md 2021-07-08 12:04:47 -07:00
Andrey Melnikov
bfee6c2e34 Merge pull request #921 from Vafilor/feat/auth.updates
feat: auth updates
2021-05-25 11:53:37 -07:00
Andrey Melnikov
47e03d7e7c Merge pull request #922 from Vafilor/fix/in.cluster.api.url
fix: use in-cluster url for ONEPANEL_API_URL
2021-05-25 11:51:08 -07:00
Andrey Melnikov
bcf78b54a0 fix: no 400 response returned from bad token 2021-05-25 11:49:35 -07:00
Andrey Melnikov
96b8f522b3 fix: use in-cluster url for ONEPANEL_API_URL so workspaces can access it in-cluster 2021-05-21 15:41:26 -07:00
Andrey Melnikov
98766cdc41 feat: auth updates 2021-05-19 13:40:43 -07:00
Rush Tehrani
378850f591 Merge pull request #919 from rushtehrani/master
chore: Add feature highlights video
2021-04-28 17:52:52 -07:00
Rush Tehrani
e27361466f Update feature highlights video 2021-04-28 17:47:49 -07:00
Rush Tehrani
daabf17078 Update features overview video 2021-04-27 11:11:15 -07:00
Rush Tehrani
73385ad779 Update README.md 2021-04-27 11:05:55 -07:00
Andrey Melnikov
c92c848134 Merge pull request #912 from inohmonton99/feat/description
feat: add description for workflow templates
2021-04-19 12:44:12 -07:00
Andrey Melnikov
82424605f6 chore: version bump to 0.22.0 2021-04-19 12:41:22 -07:00
Andrey Melnikov
9f05ab150a Merge pull request #913 from Vafilor/feat/add.deep.learning.desktop
feat: added deep learning desktop workspace
2021-04-14 11:01:56 -07:00
Andrey Melnikov
81de77d88b feat: added description to deep learning workspace 2021-04-14 10:58:22 -07:00
Andrey Melnikov
ea47eaf49d feat: added deep learning desktop workspace 2021-04-14 10:22:24 -07:00
inohmonton99
42e99f0ac4 updated api to match correct settings with new feature 2021-04-10 00:44:53 +08:00
inohmonton99
ae702c474c removed unnecessary commits and description migration for workflow_templates db 2021-04-08 00:28:20 +08:00
inohmonton99
cfd63a3ef9 description feature wip 2021-04-06 04:34:47 +08:00
Andrey Melnikov
1b2d5623b4 Merge pull request #908 from Vafilor/fix/release.command.repo
fix: updated repo in generate release notes as the name has changed
2021-04-01 16:31:42 -07:00
Andrey Melnikov
86895a9dfe Update README.md 2021-04-01 14:44:37 -07:00
Andrey Melnikov
ec94a13cd9 fix: updated repo in generate release notes as the name has changed 2021-04-01 10:53:26 -07:00
Andrey Melnikov
22836c85e1 Merge pull request #907 from Vafilor/feat/pns.updates
fix: don't use port 80 for host port
2021-04-01 10:29:23 -07:00
Andrey Melnikov
a3ab4a86b0 fjx: don't use port 80 for host port so it doesn't take it 2021-04-01 09:08:36 -07:00
Andrey Melnikov
b6ef84a0aa Merge pull request #906 from Vafilor/feat/pns.updates
fix: wrong onepanel/dl version
2021-03-31 19:21:58 -07:00
Andrey Melnikov
9f513dda9b fix: wrong onepanel/dl version 2021-03-31 18:59:21 -07:00
Andrey Melnikov
1bb3e7506d Merge pull request #905 from Vafilor/feat/pns.updates
fix: bug with remove hyperparam tuning migration
2021-03-30 15:13:02 -07:00
Andrey Melnikov
0f19e4d618 fix: bug with remove hyperparam tuning migration 2021-03-30 14:02:08 -07:00
Rush Tehrani
6c251761f5 Merge pull request #904 from Vafilor/feat/pns.updates
feat: Update code to work better with PNS executor
2021-03-30 12:47:54 -07:00
Andrey Melnikov
2cad065778 chore: codacy fixes 2021-03-29 16:23:31 -07:00
Andrey Melnikov
2fe0a239c5 feat: remove hyperparameter tuning workflow if there are no workflow executions ran by it 2021-03-29 16:18:41 -07:00
Andrey Melnikov
8287e178b5 fix: wrong onepanel/dl version for updated jupyterlab template 2021-03-29 12:35:11 -07:00
Andrey Melnikov
b869f2eb22 Merge branch 'feat/pns.updates' of github.com:Vafilor/core into feat/pns.updates 2021-03-29 12:09:54 -07:00
Andrey Melnikov
c4893ed0d7 feat: updated migrations and updated code to better work with pns executor based on Long Nguyen's suggestions. 2021-03-29 12:08:38 -07:00
Andrey Melnikov
4882671b52 feat: updated migrations and updated code to better work with pns executor based on Long Nguyen's suggestions. 2021-03-29 12:03:12 -07:00
Andrey Melnikov
a2009de7b1 Merge pull request #903 from Vafilor/fix/contributing.commands
fix: bash missing character in contributing guide
2021-03-26 13:06:22 -07:00
Andrey Melnikov
75680ee621 Merge pull request #902 from Vafilor/fix/contributing.commands
fix: windows sections of contribution guide
2021-03-26 12:59:57 -07:00
Andrey Melnikov
948f61da13 Merge pull request #892 from lnguyen/master
fix: fixes stability issue with pns executor
2021-03-26 12:09:17 -07:00
Long Nguyen
50dd0b9264 fixes stability issue with pns executor 2021-03-05 10:20:50 -05:00
147 changed files with 16011 additions and 7002 deletions

View File

@@ -1,6 +1,10 @@
name: Publish dev docker image
on:
push:
paths-ignore:
- LICENSE
- ".github/**"
- "*.md"
branches:
- master
jobs:

View File

@@ -12,6 +12,7 @@ FROM golang:1.15.5
COPY --from=builder /go/bin/core .
COPY --from=builder /go/src/db ./db
COPY --from=builder /go/bin/goose .
COPY --from=builder /go/src/manifest ./manifest
EXPOSE 8888
EXPOSE 8887

View File

@@ -1,6 +1,6 @@
<img width="200px" src="img/logo.png">
![build](https://img.shields.io/github/workflow/status/onepanelio/core/Publish%20dev%20docker%20image/master?color=01579b)
![build](https://img.shields.io/github/workflow/status/onepanelio/onepanel/Publish%20dev%20docker%20image/master?color=01579b)
![code](https://img.shields.io/codacy/grade/d060fc4d1ac64b85b78f85c691ead86a?color=01579b)
[![release](https://img.shields.io/github/v/release/onepanelio/core?color=01579b)](https://github.com/onepanelio/core/releases)
[![sdk](https://img.shields.io/pypi/v/onepanel-sdk?color=01579b&label=sdk)](https://pypi.org/project/onepanel-sdk/)
@@ -10,9 +10,10 @@
[![lfai](https://img.shields.io/badge/link-LFAI-01579b)](https://landscape.lfai.foundation/?selected=onepanel)
[![license](https://img.shields.io/github/license/onepanelio/core?color=01579b)](https://opensource.org/licenses/Apache-2.0)
The open and extensible integrated development environment (IDE) for computer vision with built-in modules for model building, automated labeling, data processing, model training, hyperparameter tuning and workflow orchestration.
## End-to-end computer vision platform
Label, build, train, tune, deploy and automate in a unified platform that runs on any cloud and on-premises.
<img width="100%" src="img/onepanel.gif">
https://user-images.githubusercontent.com/1211823/116489376-afc60000-a849-11eb-8e8b-b0c64c07c144.mp4
## Why Onepanel?
<img width="100%" src="img/features.png">
@@ -20,9 +21,6 @@ The open and extensible integrated development environment (IDE) for computer vi
## Quick start
See [quick start guide](https://docs.onepanel.ai/docs/getting-started/quickstart) to get started.
## Online demo
For a quick look at some features see this shared, read-only [online demo](https://onepanel.typeform.com/to/kQfDX5Vf?product=github).
## Community
To submit a feature request, report a bug or documentation issue, please open a GitHub [pull request](https://github.com/onepanelio/core/pulls) or [issue](https://github.com/onepanelio/core/issues).
@@ -36,12 +34,12 @@ See [contribution guide](https://docs.onepanel.ai/docs/getting-started/contribut
## Acknowledgments
Onepanel seamlessly integrates the following open source projects under the hood:
[Argo](https://github.com/argoproj/argo) | [Couler](https://github.com/couler-proj/couler) | [CVAT](https://github.com/opencv/cvat) | [JupyterLab](https://github.com/jupyterlab/jupyterlab) | [NNI](https://github.com/microsoft/nni)
[Argo](https://github.com/argoproj/argo-workflows) | [Couler](https://github.com/couler-proj/couler) | [CVAT](https://github.com/opencv/cvat) | [JupyterLab](https://github.com/jupyterlab/jupyterlab) | [NNI](https://github.com/microsoft/nni)
We are grateful for the support these communities provide and do our best to contribute back as much as possible.
## License
Onepanel is licensed under [Apache 2.0](https://github.com/onepanelio/core/blob/master/LICENSE).
## For organizations
Visit our [website](https://www.onepanel.ai/) for more information on support options and enterprise solution.
## Enterprise support
Need enterprise features and support? Visit our [website](https://www.onepanel.ai/) for more information.

View File

@@ -3,7 +3,7 @@
"info": {
"title": "Onepanel",
"description": "Onepanel API",
"version": "0.19.0",
"version": "1.0.2",
"contact": {
"name": "Onepanel project",
"url": "https://github.com/onepanelio/core"
@@ -22,6 +22,36 @@
"application/octet-stream"
],
"paths": {
"/apis/v1beta/service/{name}": {
"get": {
"operationId": "HasService",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/HasServiceResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "name",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"ServiceService"
]
}
},
"/apis/v1beta/{namespace}/field/workflow_executions/{fieldName}": {
"get": {
"operationId": "ListWorkflowExecutionsField",
@@ -647,6 +677,200 @@
]
}
},
"/apis/v1beta1/{namespace}/files/list/{path}": {
"get": {
"operationId": "ListFiles",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/ListFilesResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "path",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "page",
"in": "query",
"required": false,
"type": "integer",
"format": "int32"
},
{
"name": "perPage",
"in": "query",
"required": false,
"type": "integer",
"format": "int32"
}
],
"tags": [
"FileService"
]
}
},
"/apis/v1beta1/{namespace}/files/presigned-url/{key}": {
"get": {
"operationId": "GetObjectDownloadPresignedURL",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/GetPresignedUrlResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "key",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"FileService"
]
}
},
"/apis/v1beta1/{namespace}/inferenceservice": {
"post": {
"operationId": "CreateInferenceService",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/GetInferenceServiceResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "body",
"in": "body",
"required": true,
"schema": {
"$ref": "#/definitions/CreateInferenceServiceRequest"
}
}
],
"tags": [
"InferenceService"
]
}
},
"/apis/v1beta1/{namespace}/inferenceservice/{name}": {
"get": {
"operationId": "GetInferenceService",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/GetInferenceServiceResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "name",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"InferenceService"
]
},
"delete": {
"operationId": "DeleteInferenceService",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"properties": {}
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "name",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"InferenceService"
]
}
},
"/apis/v1beta1/{namespace}/secrets": {
"get": {
"operationId": "ListSecrets",
@@ -1245,48 +1469,6 @@
]
}
},
"/apis/v1beta1/{namespace}/workflow_executions/{uid}/artifacts/{key}": {
"get": {
"operationId": "GetArtifact",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/ArtifactResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "uid",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "key",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"WorkflowService"
]
}
},
"/apis/v1beta1/{namespace}/workflow_executions/{uid}/cron_start_statistics": {
"post": {
"operationId": "CronStartWorkflowExecutionStatistic",
@@ -1331,48 +1513,6 @@
]
}
},
"/apis/v1beta1/{namespace}/workflow_executions/{uid}/files/{path}": {
"get": {
"operationId": "ListFiles",
"responses": {
"200": {
"description": "A successful response.",
"schema": {
"$ref": "#/definitions/ListFilesResponse"
}
},
"default": {
"description": "An unexpected error response.",
"schema": {
"$ref": "#/definitions/google.rpc.Status"
}
}
},
"parameters": [
{
"name": "namespace",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "uid",
"in": "path",
"required": true,
"type": "string"
},
{
"name": "path",
"in": "path",
"required": true,
"type": "string"
}
],
"tags": [
"WorkflowService"
]
}
},
"/apis/v1beta1/{namespace}/workflow_executions/{uid}/metric": {
"post": {
"operationId": "AddWorkflowExecutionMetrics",
@@ -3228,12 +3368,40 @@
}
}
},
"ArtifactResponse": {
"Container": {
"type": "object",
"properties": {
"data": {
"type": "string",
"format": "byte"
"image": {
"type": "string"
},
"name": {
"type": "string"
},
"env": {
"type": "array",
"items": {
"$ref": "#/definitions/Env"
}
}
}
},
"CreateInferenceServiceRequest": {
"type": "object",
"properties": {
"namespace": {
"type": "string"
},
"name": {
"type": "string"
},
"defaultTransformerImage": {
"type": "string"
},
"predictor": {
"$ref": "#/definitions/InferenceServicePredictor"
},
"transformer": {
"$ref": "#/definitions/InferenceServiceTransformer"
}
}
},
@@ -3282,6 +3450,9 @@
"items": {
"$ref": "#/definitions/KeyValue"
}
},
"captureNode": {
"type": "boolean"
}
}
},
@@ -3336,6 +3507,17 @@
}
}
},
"Env": {
"type": "object",
"properties": {
"name": {
"type": "string"
},
"value": {
"type": "string"
}
}
},
"File": {
"type": "object",
"properties": {
@@ -3405,6 +3587,23 @@
}
}
},
"GetInferenceServiceResponse": {
"type": "object",
"properties": {
"ready": {
"type": "boolean"
},
"conditions": {
"type": "array",
"items": {
"$ref": "#/definitions/InferenceServiceCondition"
}
},
"predictUrl": {
"type": "string"
}
}
},
"GetLabelsResponse": {
"type": "object",
"properties": {
@@ -3424,6 +3623,18 @@
}
}
},
"GetPresignedUrlResponse": {
"type": "object",
"properties": {
"url": {
"type": "string"
},
"size": {
"type": "string",
"format": "int64"
}
}
},
"GetWorkflowExecutionMetricsResponse": {
"type": "object",
"properties": {
@@ -3451,6 +3662,80 @@
}
}
},
"HasServiceResponse": {
"type": "object",
"properties": {
"hasService": {
"type": "boolean"
}
}
},
"InferenceServiceCondition": {
"type": "object",
"properties": {
"lastTransitionTime": {
"type": "string"
},
"status": {
"type": "string"
},
"type": {
"type": "string"
}
}
},
"InferenceServicePredictor": {
"type": "object",
"properties": {
"name": {
"type": "string"
},
"runtimeVersion": {
"type": "string"
},
"storageUri": {
"type": "string"
},
"nodeSelector": {
"type": "string"
},
"minCpu": {
"type": "string"
},
"minMemory": {
"type": "string"
},
"maxCpu": {
"type": "string"
},
"maxMemory": {
"type": "string"
}
}
},
"InferenceServiceTransformer": {
"type": "object",
"properties": {
"containers": {
"type": "array",
"items": {
"$ref": "#/definitions/Container"
}
},
"minCpu": {
"type": "string"
},
"minMemory": {
"type": "string"
},
"maxCpu": {
"type": "string"
},
"maxMemory": {
"type": "string"
}
}
},
"IsAuthorized": {
"type": "object",
"properties": {
@@ -3556,6 +3841,22 @@
"ListFilesResponse": {
"type": "object",
"properties": {
"count": {
"type": "integer",
"format": "int32"
},
"totalCount": {
"type": "integer",
"format": "int32"
},
"page": {
"type": "integer",
"format": "int32"
},
"pages": {
"type": "integer",
"format": "int32"
},
"files": {
"type": "array",
"items": {
@@ -3883,6 +4184,9 @@
"properties": {
"name": {
"type": "string"
},
"sourceName": {
"type": "string"
}
}
},
@@ -4195,6 +4499,9 @@
"items": {
"$ref": "#/definitions/Parameter"
}
},
"description": {
"type": "string"
}
}
},

580
api/gen/files.pb.go Normal file
View File

@@ -0,0 +1,580 @@
// Code generated by protoc-gen-go. DO NOT EDIT.
// versions:
// protoc-gen-go v1.25.0
// protoc v3.14.0
// source: files.proto
package gen
import (
proto "github.com/golang/protobuf/proto"
_ "google.golang.org/genproto/googleapis/api/annotations"
protoreflect "google.golang.org/protobuf/reflect/protoreflect"
protoimpl "google.golang.org/protobuf/runtime/protoimpl"
reflect "reflect"
sync "sync"
)
const (
// Verify that this generated code is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(20 - protoimpl.MinVersion)
// Verify that runtime/protoimpl is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(protoimpl.MaxVersion - 20)
)
// This is a compile-time assertion that a sufficiently up-to-date version
// of the legacy proto package is being used.
const _ = proto.ProtoPackageIsVersion4
type File struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Path string `protobuf:"bytes,1,opt,name=path,proto3" json:"path,omitempty"`
Name string `protobuf:"bytes,2,opt,name=name,proto3" json:"name,omitempty"`
Extension string `protobuf:"bytes,3,opt,name=extension,proto3" json:"extension,omitempty"`
Size int64 `protobuf:"varint,4,opt,name=size,proto3" json:"size,omitempty"`
ContentType string `protobuf:"bytes,5,opt,name=contentType,proto3" json:"contentType,omitempty"`
LastModified string `protobuf:"bytes,6,opt,name=lastModified,proto3" json:"lastModified,omitempty"`
Directory bool `protobuf:"varint,7,opt,name=directory,proto3" json:"directory,omitempty"`
}
func (x *File) Reset() {
*x = File{}
if protoimpl.UnsafeEnabled {
mi := &file_files_proto_msgTypes[0]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *File) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*File) ProtoMessage() {}
func (x *File) ProtoReflect() protoreflect.Message {
mi := &file_files_proto_msgTypes[0]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use File.ProtoReflect.Descriptor instead.
func (*File) Descriptor() ([]byte, []int) {
return file_files_proto_rawDescGZIP(), []int{0}
}
func (x *File) GetPath() string {
if x != nil {
return x.Path
}
return ""
}
func (x *File) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *File) GetExtension() string {
if x != nil {
return x.Extension
}
return ""
}
func (x *File) GetSize() int64 {
if x != nil {
return x.Size
}
return 0
}
func (x *File) GetContentType() string {
if x != nil {
return x.ContentType
}
return ""
}
func (x *File) GetLastModified() string {
if x != nil {
return x.LastModified
}
return ""
}
func (x *File) GetDirectory() bool {
if x != nil {
return x.Directory
}
return false
}
type ListFilesRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Namespace string `protobuf:"bytes,1,opt,name=namespace,proto3" json:"namespace,omitempty"`
Path string `protobuf:"bytes,2,opt,name=path,proto3" json:"path,omitempty"`
Page int32 `protobuf:"varint,3,opt,name=page,proto3" json:"page,omitempty"`
PerPage int32 `protobuf:"varint,4,opt,name=perPage,proto3" json:"perPage,omitempty"`
}
func (x *ListFilesRequest) Reset() {
*x = ListFilesRequest{}
if protoimpl.UnsafeEnabled {
mi := &file_files_proto_msgTypes[1]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ListFilesRequest) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ListFilesRequest) ProtoMessage() {}
func (x *ListFilesRequest) ProtoReflect() protoreflect.Message {
mi := &file_files_proto_msgTypes[1]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use ListFilesRequest.ProtoReflect.Descriptor instead.
func (*ListFilesRequest) Descriptor() ([]byte, []int) {
return file_files_proto_rawDescGZIP(), []int{1}
}
func (x *ListFilesRequest) GetNamespace() string {
if x != nil {
return x.Namespace
}
return ""
}
func (x *ListFilesRequest) GetPath() string {
if x != nil {
return x.Path
}
return ""
}
func (x *ListFilesRequest) GetPage() int32 {
if x != nil {
return x.Page
}
return 0
}
func (x *ListFilesRequest) GetPerPage() int32 {
if x != nil {
return x.PerPage
}
return 0
}
type ListFilesResponse struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Count int32 `protobuf:"varint,1,opt,name=count,proto3" json:"count,omitempty"`
TotalCount int32 `protobuf:"varint,2,opt,name=totalCount,proto3" json:"totalCount,omitempty"`
Page int32 `protobuf:"varint,3,opt,name=page,proto3" json:"page,omitempty"`
Pages int32 `protobuf:"varint,4,opt,name=pages,proto3" json:"pages,omitempty"`
Files []*File `protobuf:"bytes,5,rep,name=files,proto3" json:"files,omitempty"`
ParentPath string `protobuf:"bytes,6,opt,name=parentPath,proto3" json:"parentPath,omitempty"`
}
func (x *ListFilesResponse) Reset() {
*x = ListFilesResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_files_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ListFilesResponse) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ListFilesResponse) ProtoMessage() {}
func (x *ListFilesResponse) ProtoReflect() protoreflect.Message {
mi := &file_files_proto_msgTypes[2]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use ListFilesResponse.ProtoReflect.Descriptor instead.
func (*ListFilesResponse) Descriptor() ([]byte, []int) {
return file_files_proto_rawDescGZIP(), []int{2}
}
func (x *ListFilesResponse) GetCount() int32 {
if x != nil {
return x.Count
}
return 0
}
func (x *ListFilesResponse) GetTotalCount() int32 {
if x != nil {
return x.TotalCount
}
return 0
}
func (x *ListFilesResponse) GetPage() int32 {
if x != nil {
return x.Page
}
return 0
}
func (x *ListFilesResponse) GetPages() int32 {
if x != nil {
return x.Pages
}
return 0
}
func (x *ListFilesResponse) GetFiles() []*File {
if x != nil {
return x.Files
}
return nil
}
func (x *ListFilesResponse) GetParentPath() string {
if x != nil {
return x.ParentPath
}
return ""
}
type GetObjectPresignedUrlRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Namespace string `protobuf:"bytes,1,opt,name=namespace,proto3" json:"namespace,omitempty"`
Key string `protobuf:"bytes,2,opt,name=key,proto3" json:"key,omitempty"`
}
func (x *GetObjectPresignedUrlRequest) Reset() {
*x = GetObjectPresignedUrlRequest{}
if protoimpl.UnsafeEnabled {
mi := &file_files_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *GetObjectPresignedUrlRequest) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*GetObjectPresignedUrlRequest) ProtoMessage() {}
func (x *GetObjectPresignedUrlRequest) ProtoReflect() protoreflect.Message {
mi := &file_files_proto_msgTypes[3]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use GetObjectPresignedUrlRequest.ProtoReflect.Descriptor instead.
func (*GetObjectPresignedUrlRequest) Descriptor() ([]byte, []int) {
return file_files_proto_rawDescGZIP(), []int{3}
}
func (x *GetObjectPresignedUrlRequest) GetNamespace() string {
if x != nil {
return x.Namespace
}
return ""
}
func (x *GetObjectPresignedUrlRequest) GetKey() string {
if x != nil {
return x.Key
}
return ""
}
type GetPresignedUrlResponse struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Url string `protobuf:"bytes,1,opt,name=url,proto3" json:"url,omitempty"`
Size int64 `protobuf:"varint,2,opt,name=size,proto3" json:"size,omitempty"`
}
func (x *GetPresignedUrlResponse) Reset() {
*x = GetPresignedUrlResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_files_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *GetPresignedUrlResponse) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*GetPresignedUrlResponse) ProtoMessage() {}
func (x *GetPresignedUrlResponse) ProtoReflect() protoreflect.Message {
mi := &file_files_proto_msgTypes[4]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use GetPresignedUrlResponse.ProtoReflect.Descriptor instead.
func (*GetPresignedUrlResponse) Descriptor() ([]byte, []int) {
return file_files_proto_rawDescGZIP(), []int{4}
}
func (x *GetPresignedUrlResponse) GetUrl() string {
if x != nil {
return x.Url
}
return ""
}
func (x *GetPresignedUrlResponse) GetSize() int64 {
if x != nil {
return x.Size
}
return 0
}
var File_files_proto protoreflect.FileDescriptor
var file_files_proto_rawDesc = []byte{
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}
var (
file_files_proto_rawDescOnce sync.Once
file_files_proto_rawDescData = file_files_proto_rawDesc
)
func file_files_proto_rawDescGZIP() []byte {
file_files_proto_rawDescOnce.Do(func() {
file_files_proto_rawDescData = protoimpl.X.CompressGZIP(file_files_proto_rawDescData)
})
return file_files_proto_rawDescData
}
var file_files_proto_msgTypes = make([]protoimpl.MessageInfo, 5)
var file_files_proto_goTypes = []interface{}{
(*File)(nil), // 0: api.File
(*ListFilesRequest)(nil), // 1: api.ListFilesRequest
(*ListFilesResponse)(nil), // 2: api.ListFilesResponse
(*GetObjectPresignedUrlRequest)(nil), // 3: api.GetObjectPresignedUrlRequest
(*GetPresignedUrlResponse)(nil), // 4: api.GetPresignedUrlResponse
}
var file_files_proto_depIdxs = []int32{
0, // 0: api.ListFilesResponse.files:type_name -> api.File
3, // 1: api.FileService.GetObjectDownloadPresignedURL:input_type -> api.GetObjectPresignedUrlRequest
1, // 2: api.FileService.ListFiles:input_type -> api.ListFilesRequest
4, // 3: api.FileService.GetObjectDownloadPresignedURL:output_type -> api.GetPresignedUrlResponse
2, // 4: api.FileService.ListFiles:output_type -> api.ListFilesResponse
3, // [3:5] is the sub-list for method output_type
1, // [1:3] is the sub-list for method input_type
1, // [1:1] is the sub-list for extension type_name
1, // [1:1] is the sub-list for extension extendee
0, // [0:1] is the sub-list for field type_name
}
func init() { file_files_proto_init() }
func file_files_proto_init() {
if File_files_proto != nil {
return
}
if !protoimpl.UnsafeEnabled {
file_files_proto_msgTypes[0].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*File); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_files_proto_msgTypes[1].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ListFilesRequest); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_files_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ListFilesResponse); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_files_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*GetObjectPresignedUrlRequest); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_files_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*GetPresignedUrlResponse); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
}
type x struct{}
out := protoimpl.TypeBuilder{
File: protoimpl.DescBuilder{
GoPackagePath: reflect.TypeOf(x{}).PkgPath(),
RawDescriptor: file_files_proto_rawDesc,
NumEnums: 0,
NumMessages: 5,
NumExtensions: 0,
NumServices: 1,
},
GoTypes: file_files_proto_goTypes,
DependencyIndexes: file_files_proto_depIdxs,
MessageInfos: file_files_proto_msgTypes,
}.Build()
File_files_proto = out.File
file_files_proto_rawDesc = nil
file_files_proto_goTypes = nil
file_files_proto_depIdxs = nil
}

342
api/gen/files.pb.gw.go Normal file
View File

@@ -0,0 +1,342 @@
// Code generated by protoc-gen-grpc-gateway. DO NOT EDIT.
// source: files.proto
/*
Package gen is a reverse proxy.
It translates gRPC into RESTful JSON APIs.
*/
package gen
import (
"context"
"io"
"net/http"
"github.com/grpc-ecosystem/grpc-gateway/v2/runtime"
"github.com/grpc-ecosystem/grpc-gateway/v2/utilities"
"google.golang.org/grpc"
"google.golang.org/grpc/codes"
"google.golang.org/grpc/grpclog"
"google.golang.org/grpc/metadata"
"google.golang.org/grpc/status"
"google.golang.org/protobuf/proto"
)
// Suppress "imported and not used" errors
var _ codes.Code
var _ io.Reader
var _ status.Status
var _ = runtime.String
var _ = utilities.NewDoubleArray
var _ = metadata.Join
func request_FileService_GetObjectDownloadPresignedURL_0(ctx context.Context, marshaler runtime.Marshaler, client FileServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq GetObjectPresignedUrlRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["key"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "key")
}
protoReq.Key, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "key", err)
}
msg, err := client.GetObjectDownloadPresignedURL(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_FileService_GetObjectDownloadPresignedURL_0(ctx context.Context, marshaler runtime.Marshaler, server FileServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq GetObjectPresignedUrlRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["key"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "key")
}
protoReq.Key, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "key", err)
}
msg, err := server.GetObjectDownloadPresignedURL(ctx, &protoReq)
return msg, metadata, err
}
var (
filter_FileService_ListFiles_0 = &utilities.DoubleArray{Encoding: map[string]int{"namespace": 0, "path": 1}, Base: []int{1, 1, 2, 0, 0}, Check: []int{0, 1, 1, 2, 3}}
)
func request_FileService_ListFiles_0(ctx context.Context, marshaler runtime.Marshaler, client FileServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq ListFilesRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["path"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "path")
}
protoReq.Path, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "path", err)
}
if err := req.ParseForm(); err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
if err := runtime.PopulateQueryParameters(&protoReq, req.Form, filter_FileService_ListFiles_0); err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
msg, err := client.ListFiles(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_FileService_ListFiles_0(ctx context.Context, marshaler runtime.Marshaler, server FileServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq ListFilesRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["path"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "path")
}
protoReq.Path, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "path", err)
}
if err := req.ParseForm(); err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
if err := runtime.PopulateQueryParameters(&protoReq, req.Form, filter_FileService_ListFiles_0); err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
msg, err := server.ListFiles(ctx, &protoReq)
return msg, metadata, err
}
// RegisterFileServiceHandlerServer registers the http handlers for service FileService to "mux".
// UnaryRPC :call FileServiceServer directly.
// StreamingRPC :currently unsupported pending https://github.com/grpc/grpc-go/issues/906.
// Note that using this registration option will cause many gRPC library features to stop working. Consider using RegisterFileServiceHandlerFromEndpoint instead.
func RegisterFileServiceHandlerServer(ctx context.Context, mux *runtime.ServeMux, server FileServiceServer) error {
mux.Handle("GET", pattern_FileService_GetObjectDownloadPresignedURL_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.FileService/GetObjectDownloadPresignedURL")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_FileService_GetObjectDownloadPresignedURL_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_FileService_GetObjectDownloadPresignedURL_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_FileService_ListFiles_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.FileService/ListFiles")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_FileService_ListFiles_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_FileService_ListFiles_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
// RegisterFileServiceHandlerFromEndpoint is same as RegisterFileServiceHandler but
// automatically dials to "endpoint" and closes the connection when "ctx" gets done.
func RegisterFileServiceHandlerFromEndpoint(ctx context.Context, mux *runtime.ServeMux, endpoint string, opts []grpc.DialOption) (err error) {
conn, err := grpc.Dial(endpoint, opts...)
if err != nil {
return err
}
defer func() {
if err != nil {
if cerr := conn.Close(); cerr != nil {
grpclog.Infof("Failed to close conn to %s: %v", endpoint, cerr)
}
return
}
go func() {
<-ctx.Done()
if cerr := conn.Close(); cerr != nil {
grpclog.Infof("Failed to close conn to %s: %v", endpoint, cerr)
}
}()
}()
return RegisterFileServiceHandler(ctx, mux, conn)
}
// RegisterFileServiceHandler registers the http handlers for service FileService to "mux".
// The handlers forward requests to the grpc endpoint over "conn".
func RegisterFileServiceHandler(ctx context.Context, mux *runtime.ServeMux, conn *grpc.ClientConn) error {
return RegisterFileServiceHandlerClient(ctx, mux, NewFileServiceClient(conn))
}
// RegisterFileServiceHandlerClient registers the http handlers for service FileService
// to "mux". The handlers forward requests to the grpc endpoint over the given implementation of "FileServiceClient".
// Note: the gRPC framework executes interceptors within the gRPC handler. If the passed in "FileServiceClient"
// doesn't go through the normal gRPC flow (creating a gRPC client etc.) then it will be up to the passed in
// "FileServiceClient" to call the correct interceptors.
func RegisterFileServiceHandlerClient(ctx context.Context, mux *runtime.ServeMux, client FileServiceClient) error {
mux.Handle("GET", pattern_FileService_GetObjectDownloadPresignedURL_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.FileService/GetObjectDownloadPresignedURL")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_FileService_GetObjectDownloadPresignedURL_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_FileService_GetObjectDownloadPresignedURL_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_FileService_ListFiles_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.FileService/ListFiles")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_FileService_ListFiles_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_FileService_ListFiles_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
var (
pattern_FileService_GetObjectDownloadPresignedURL_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 2, 4, 3, 0, 4, 1, 5, 5}, []string{"apis", "v1beta1", "namespace", "files", "presigned-url", "key"}, ""))
pattern_FileService_ListFiles_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 2, 4, 3, 0, 4, 1, 5, 5}, []string{"apis", "v1beta1", "namespace", "files", "list", "path"}, ""))
)
var (
forward_FileService_GetObjectDownloadPresignedURL_0 = runtime.ForwardResponseMessage
forward_FileService_ListFiles_0 = runtime.ForwardResponseMessage
)

133
api/gen/files_grpc.pb.go Normal file
View File

@@ -0,0 +1,133 @@
// Code generated by protoc-gen-go-grpc. DO NOT EDIT.
package gen
import (
context "context"
grpc "google.golang.org/grpc"
codes "google.golang.org/grpc/codes"
status "google.golang.org/grpc/status"
)
// This is a compile-time assertion to ensure that this generated file
// is compatible with the grpc package it is being compiled against.
const _ = grpc.SupportPackageIsVersion7
// FileServiceClient is the client API for FileService service.
//
// For semantics around ctx use and closing/ending streaming RPCs, please refer to https://pkg.go.dev/google.golang.org/grpc/?tab=doc#ClientConn.NewStream.
type FileServiceClient interface {
GetObjectDownloadPresignedURL(ctx context.Context, in *GetObjectPresignedUrlRequest, opts ...grpc.CallOption) (*GetPresignedUrlResponse, error)
ListFiles(ctx context.Context, in *ListFilesRequest, opts ...grpc.CallOption) (*ListFilesResponse, error)
}
type fileServiceClient struct {
cc grpc.ClientConnInterface
}
func NewFileServiceClient(cc grpc.ClientConnInterface) FileServiceClient {
return &fileServiceClient{cc}
}
func (c *fileServiceClient) GetObjectDownloadPresignedURL(ctx context.Context, in *GetObjectPresignedUrlRequest, opts ...grpc.CallOption) (*GetPresignedUrlResponse, error) {
out := new(GetPresignedUrlResponse)
err := c.cc.Invoke(ctx, "/api.FileService/GetObjectDownloadPresignedURL", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
func (c *fileServiceClient) ListFiles(ctx context.Context, in *ListFilesRequest, opts ...grpc.CallOption) (*ListFilesResponse, error) {
out := new(ListFilesResponse)
err := c.cc.Invoke(ctx, "/api.FileService/ListFiles", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
// FileServiceServer is the server API for FileService service.
// All implementations must embed UnimplementedFileServiceServer
// for forward compatibility
type FileServiceServer interface {
GetObjectDownloadPresignedURL(context.Context, *GetObjectPresignedUrlRequest) (*GetPresignedUrlResponse, error)
ListFiles(context.Context, *ListFilesRequest) (*ListFilesResponse, error)
mustEmbedUnimplementedFileServiceServer()
}
// UnimplementedFileServiceServer must be embedded to have forward compatible implementations.
type UnimplementedFileServiceServer struct {
}
func (UnimplementedFileServiceServer) GetObjectDownloadPresignedURL(context.Context, *GetObjectPresignedUrlRequest) (*GetPresignedUrlResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method GetObjectDownloadPresignedURL not implemented")
}
func (UnimplementedFileServiceServer) ListFiles(context.Context, *ListFilesRequest) (*ListFilesResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method ListFiles not implemented")
}
func (UnimplementedFileServiceServer) mustEmbedUnimplementedFileServiceServer() {}
// UnsafeFileServiceServer may be embedded to opt out of forward compatibility for this service.
// Use of this interface is not recommended, as added methods to FileServiceServer will
// result in compilation errors.
type UnsafeFileServiceServer interface {
mustEmbedUnimplementedFileServiceServer()
}
func RegisterFileServiceServer(s grpc.ServiceRegistrar, srv FileServiceServer) {
s.RegisterService(&_FileService_serviceDesc, srv)
}
func _FileService_GetObjectDownloadPresignedURL_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(GetObjectPresignedUrlRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(FileServiceServer).GetObjectDownloadPresignedURL(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.FileService/GetObjectDownloadPresignedURL",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(FileServiceServer).GetObjectDownloadPresignedURL(ctx, req.(*GetObjectPresignedUrlRequest))
}
return interceptor(ctx, in, info, handler)
}
func _FileService_ListFiles_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(ListFilesRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(FileServiceServer).ListFiles(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.FileService/ListFiles",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(FileServiceServer).ListFiles(ctx, req.(*ListFilesRequest))
}
return interceptor(ctx, in, info, handler)
}
var _FileService_serviceDesc = grpc.ServiceDesc{
ServiceName: "api.FileService",
HandlerType: (*FileServiceServer)(nil),
Methods: []grpc.MethodDesc{
{
MethodName: "GetObjectDownloadPresignedURL",
Handler: _FileService_GetObjectDownloadPresignedURL_Handler,
},
{
MethodName: "ListFiles",
Handler: _FileService_ListFiles_Handler,
},
},
Streams: []grpc.StreamDesc{},
Metadata: "files.proto",
}

View File

@@ -0,0 +1,999 @@
// Code generated by protoc-gen-go. DO NOT EDIT.
// versions:
// protoc-gen-go v1.25.0
// protoc v3.14.0
// source: inference_service.proto
package gen
import (
proto "github.com/golang/protobuf/proto"
_ "google.golang.org/genproto/googleapis/api/annotations"
protoreflect "google.golang.org/protobuf/reflect/protoreflect"
protoimpl "google.golang.org/protobuf/runtime/protoimpl"
emptypb "google.golang.org/protobuf/types/known/emptypb"
reflect "reflect"
sync "sync"
)
const (
// Verify that this generated code is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(20 - protoimpl.MinVersion)
// Verify that runtime/protoimpl is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(protoimpl.MaxVersion - 20)
)
// This is a compile-time assertion that a sufficiently up-to-date version
// of the legacy proto package is being used.
const _ = proto.ProtoPackageIsVersion4
type InferenceServiceIdentifier struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Namespace string `protobuf:"bytes,1,opt,name=namespace,proto3" json:"namespace,omitempty"`
Name string `protobuf:"bytes,2,opt,name=name,proto3" json:"name,omitempty"`
}
func (x *InferenceServiceIdentifier) Reset() {
*x = InferenceServiceIdentifier{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[0]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *InferenceServiceIdentifier) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*InferenceServiceIdentifier) ProtoMessage() {}
func (x *InferenceServiceIdentifier) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[0]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use InferenceServiceIdentifier.ProtoReflect.Descriptor instead.
func (*InferenceServiceIdentifier) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{0}
}
func (x *InferenceServiceIdentifier) GetNamespace() string {
if x != nil {
return x.Namespace
}
return ""
}
func (x *InferenceServiceIdentifier) GetName() string {
if x != nil {
return x.Name
}
return ""
}
type Env struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
Value string `protobuf:"bytes,2,opt,name=value,proto3" json:"value,omitempty"`
}
func (x *Env) Reset() {
*x = Env{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[1]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Env) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Env) ProtoMessage() {}
func (x *Env) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[1]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use Env.ProtoReflect.Descriptor instead.
func (*Env) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{1}
}
func (x *Env) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *Env) GetValue() string {
if x != nil {
return x.Value
}
return ""
}
type Container struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Image string `protobuf:"bytes,1,opt,name=image,proto3" json:"image,omitempty"`
Name string `protobuf:"bytes,2,opt,name=name,proto3" json:"name,omitempty"`
Env []*Env `protobuf:"bytes,3,rep,name=env,proto3" json:"env,omitempty"`
}
func (x *Container) Reset() {
*x = Container{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Container) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Container) ProtoMessage() {}
func (x *Container) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[2]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use Container.ProtoReflect.Descriptor instead.
func (*Container) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{2}
}
func (x *Container) GetImage() string {
if x != nil {
return x.Image
}
return ""
}
func (x *Container) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *Container) GetEnv() []*Env {
if x != nil {
return x.Env
}
return nil
}
type InferenceServiceTransformer struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Containers []*Container `protobuf:"bytes,1,rep,name=containers,proto3" json:"containers,omitempty"`
MinCpu string `protobuf:"bytes,2,opt,name=minCpu,proto3" json:"minCpu,omitempty"`
MinMemory string `protobuf:"bytes,3,opt,name=minMemory,proto3" json:"minMemory,omitempty"`
MaxCpu string `protobuf:"bytes,4,opt,name=maxCpu,proto3" json:"maxCpu,omitempty"`
MaxMemory string `protobuf:"bytes,5,opt,name=maxMemory,proto3" json:"maxMemory,omitempty"`
}
func (x *InferenceServiceTransformer) Reset() {
*x = InferenceServiceTransformer{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *InferenceServiceTransformer) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*InferenceServiceTransformer) ProtoMessage() {}
func (x *InferenceServiceTransformer) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[3]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use InferenceServiceTransformer.ProtoReflect.Descriptor instead.
func (*InferenceServiceTransformer) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{3}
}
func (x *InferenceServiceTransformer) GetContainers() []*Container {
if x != nil {
return x.Containers
}
return nil
}
func (x *InferenceServiceTransformer) GetMinCpu() string {
if x != nil {
return x.MinCpu
}
return ""
}
func (x *InferenceServiceTransformer) GetMinMemory() string {
if x != nil {
return x.MinMemory
}
return ""
}
func (x *InferenceServiceTransformer) GetMaxCpu() string {
if x != nil {
return x.MaxCpu
}
return ""
}
func (x *InferenceServiceTransformer) GetMaxMemory() string {
if x != nil {
return x.MaxMemory
}
return ""
}
type InferenceServicePredictor struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
RuntimeVersion string `protobuf:"bytes,2,opt,name=runtimeVersion,proto3" json:"runtimeVersion,omitempty"`
StorageUri string `protobuf:"bytes,3,opt,name=storageUri,proto3" json:"storageUri,omitempty"`
NodeSelector string `protobuf:"bytes,4,opt,name=nodeSelector,proto3" json:"nodeSelector,omitempty"`
MinCpu string `protobuf:"bytes,5,opt,name=minCpu,proto3" json:"minCpu,omitempty"`
MinMemory string `protobuf:"bytes,6,opt,name=minMemory,proto3" json:"minMemory,omitempty"`
MaxCpu string `protobuf:"bytes,7,opt,name=maxCpu,proto3" json:"maxCpu,omitempty"`
MaxMemory string `protobuf:"bytes,8,opt,name=maxMemory,proto3" json:"maxMemory,omitempty"`
}
func (x *InferenceServicePredictor) Reset() {
*x = InferenceServicePredictor{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *InferenceServicePredictor) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*InferenceServicePredictor) ProtoMessage() {}
func (x *InferenceServicePredictor) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[4]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use InferenceServicePredictor.ProtoReflect.Descriptor instead.
func (*InferenceServicePredictor) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{4}
}
func (x *InferenceServicePredictor) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *InferenceServicePredictor) GetRuntimeVersion() string {
if x != nil {
return x.RuntimeVersion
}
return ""
}
func (x *InferenceServicePredictor) GetStorageUri() string {
if x != nil {
return x.StorageUri
}
return ""
}
func (x *InferenceServicePredictor) GetNodeSelector() string {
if x != nil {
return x.NodeSelector
}
return ""
}
func (x *InferenceServicePredictor) GetMinCpu() string {
if x != nil {
return x.MinCpu
}
return ""
}
func (x *InferenceServicePredictor) GetMinMemory() string {
if x != nil {
return x.MinMemory
}
return ""
}
func (x *InferenceServicePredictor) GetMaxCpu() string {
if x != nil {
return x.MaxCpu
}
return ""
}
func (x *InferenceServicePredictor) GetMaxMemory() string {
if x != nil {
return x.MaxMemory
}
return ""
}
type CreateInferenceServiceRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Namespace string `protobuf:"bytes,1,opt,name=namespace,proto3" json:"namespace,omitempty"`
Name string `protobuf:"bytes,2,opt,name=name,proto3" json:"name,omitempty"`
DefaultTransformerImage string `protobuf:"bytes,3,opt,name=defaultTransformerImage,proto3" json:"defaultTransformerImage,omitempty"`
Predictor *InferenceServicePredictor `protobuf:"bytes,4,opt,name=predictor,proto3" json:"predictor,omitempty"`
Transformer *InferenceServiceTransformer `protobuf:"bytes,5,opt,name=transformer,proto3" json:"transformer,omitempty"`
}
func (x *CreateInferenceServiceRequest) Reset() {
*x = CreateInferenceServiceRequest{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[5]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *CreateInferenceServiceRequest) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*CreateInferenceServiceRequest) ProtoMessage() {}
func (x *CreateInferenceServiceRequest) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[5]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use CreateInferenceServiceRequest.ProtoReflect.Descriptor instead.
func (*CreateInferenceServiceRequest) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{5}
}
func (x *CreateInferenceServiceRequest) GetNamespace() string {
if x != nil {
return x.Namespace
}
return ""
}
func (x *CreateInferenceServiceRequest) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *CreateInferenceServiceRequest) GetDefaultTransformerImage() string {
if x != nil {
return x.DefaultTransformerImage
}
return ""
}
func (x *CreateInferenceServiceRequest) GetPredictor() *InferenceServicePredictor {
if x != nil {
return x.Predictor
}
return nil
}
func (x *CreateInferenceServiceRequest) GetTransformer() *InferenceServiceTransformer {
if x != nil {
return x.Transformer
}
return nil
}
type DeployModelResponse struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Status string `protobuf:"bytes,1,opt,name=status,proto3" json:"status,omitempty"`
}
func (x *DeployModelResponse) Reset() {
*x = DeployModelResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[6]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *DeployModelResponse) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*DeployModelResponse) ProtoMessage() {}
func (x *DeployModelResponse) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[6]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use DeployModelResponse.ProtoReflect.Descriptor instead.
func (*DeployModelResponse) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{6}
}
func (x *DeployModelResponse) GetStatus() string {
if x != nil {
return x.Status
}
return ""
}
type InferenceServiceCondition struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
LastTransitionTime string `protobuf:"bytes,1,opt,name=lastTransitionTime,proto3" json:"lastTransitionTime,omitempty"`
Status string `protobuf:"bytes,2,opt,name=status,proto3" json:"status,omitempty"`
Type string `protobuf:"bytes,3,opt,name=type,proto3" json:"type,omitempty"`
}
func (x *InferenceServiceCondition) Reset() {
*x = InferenceServiceCondition{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[7]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *InferenceServiceCondition) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*InferenceServiceCondition) ProtoMessage() {}
func (x *InferenceServiceCondition) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[7]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use InferenceServiceCondition.ProtoReflect.Descriptor instead.
func (*InferenceServiceCondition) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{7}
}
func (x *InferenceServiceCondition) GetLastTransitionTime() string {
if x != nil {
return x.LastTransitionTime
}
return ""
}
func (x *InferenceServiceCondition) GetStatus() string {
if x != nil {
return x.Status
}
return ""
}
func (x *InferenceServiceCondition) GetType() string {
if x != nil {
return x.Type
}
return ""
}
type GetInferenceServiceResponse struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Ready bool `protobuf:"varint,1,opt,name=ready,proto3" json:"ready,omitempty"`
Conditions []*InferenceServiceCondition `protobuf:"bytes,2,rep,name=conditions,proto3" json:"conditions,omitempty"`
PredictUrl string `protobuf:"bytes,3,opt,name=predictUrl,proto3" json:"predictUrl,omitempty"`
}
func (x *GetInferenceServiceResponse) Reset() {
*x = GetInferenceServiceResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[8]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *GetInferenceServiceResponse) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*GetInferenceServiceResponse) ProtoMessage() {}
func (x *GetInferenceServiceResponse) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[8]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use GetInferenceServiceResponse.ProtoReflect.Descriptor instead.
func (*GetInferenceServiceResponse) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{8}
}
func (x *GetInferenceServiceResponse) GetReady() bool {
if x != nil {
return x.Ready
}
return false
}
func (x *GetInferenceServiceResponse) GetConditions() []*InferenceServiceCondition {
if x != nil {
return x.Conditions
}
return nil
}
func (x *GetInferenceServiceResponse) GetPredictUrl() string {
if x != nil {
return x.PredictUrl
}
return ""
}
type InferenceServiceEndpoints struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Predict string `protobuf:"bytes,1,opt,name=predict,proto3" json:"predict,omitempty"`
}
func (x *InferenceServiceEndpoints) Reset() {
*x = InferenceServiceEndpoints{}
if protoimpl.UnsafeEnabled {
mi := &file_inference_service_proto_msgTypes[9]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *InferenceServiceEndpoints) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*InferenceServiceEndpoints) ProtoMessage() {}
func (x *InferenceServiceEndpoints) ProtoReflect() protoreflect.Message {
mi := &file_inference_service_proto_msgTypes[9]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use InferenceServiceEndpoints.ProtoReflect.Descriptor instead.
func (*InferenceServiceEndpoints) Descriptor() ([]byte, []int) {
return file_inference_service_proto_rawDescGZIP(), []int{9}
}
func (x *InferenceServiceEndpoints) GetPredict() string {
if x != nil {
return x.Predict
}
return ""
}
var File_inference_service_proto protoreflect.FileDescriptor
var file_inference_service_proto_rawDesc = []byte{
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}
var (
file_inference_service_proto_rawDescOnce sync.Once
file_inference_service_proto_rawDescData = file_inference_service_proto_rawDesc
)
func file_inference_service_proto_rawDescGZIP() []byte {
file_inference_service_proto_rawDescOnce.Do(func() {
file_inference_service_proto_rawDescData = protoimpl.X.CompressGZIP(file_inference_service_proto_rawDescData)
})
return file_inference_service_proto_rawDescData
}
var file_inference_service_proto_msgTypes = make([]protoimpl.MessageInfo, 10)
var file_inference_service_proto_goTypes = []interface{}{
(*InferenceServiceIdentifier)(nil), // 0: api.InferenceServiceIdentifier
(*Env)(nil), // 1: api.Env
(*Container)(nil), // 2: api.Container
(*InferenceServiceTransformer)(nil), // 3: api.InferenceServiceTransformer
(*InferenceServicePredictor)(nil), // 4: api.InferenceServicePredictor
(*CreateInferenceServiceRequest)(nil), // 5: api.CreateInferenceServiceRequest
(*DeployModelResponse)(nil), // 6: api.DeployModelResponse
(*InferenceServiceCondition)(nil), // 7: api.InferenceServiceCondition
(*GetInferenceServiceResponse)(nil), // 8: api.GetInferenceServiceResponse
(*InferenceServiceEndpoints)(nil), // 9: api.InferenceServiceEndpoints
(*emptypb.Empty)(nil), // 10: google.protobuf.Empty
}
var file_inference_service_proto_depIdxs = []int32{
1, // 0: api.Container.env:type_name -> api.Env
2, // 1: api.InferenceServiceTransformer.containers:type_name -> api.Container
4, // 2: api.CreateInferenceServiceRequest.predictor:type_name -> api.InferenceServicePredictor
3, // 3: api.CreateInferenceServiceRequest.transformer:type_name -> api.InferenceServiceTransformer
7, // 4: api.GetInferenceServiceResponse.conditions:type_name -> api.InferenceServiceCondition
5, // 5: api.InferenceService.CreateInferenceService:input_type -> api.CreateInferenceServiceRequest
0, // 6: api.InferenceService.GetInferenceService:input_type -> api.InferenceServiceIdentifier
0, // 7: api.InferenceService.DeleteInferenceService:input_type -> api.InferenceServiceIdentifier
8, // 8: api.InferenceService.CreateInferenceService:output_type -> api.GetInferenceServiceResponse
8, // 9: api.InferenceService.GetInferenceService:output_type -> api.GetInferenceServiceResponse
10, // 10: api.InferenceService.DeleteInferenceService:output_type -> google.protobuf.Empty
8, // [8:11] is the sub-list for method output_type
5, // [5:8] is the sub-list for method input_type
5, // [5:5] is the sub-list for extension type_name
5, // [5:5] is the sub-list for extension extendee
0, // [0:5] is the sub-list for field type_name
}
func init() { file_inference_service_proto_init() }
func file_inference_service_proto_init() {
if File_inference_service_proto != nil {
return
}
if !protoimpl.UnsafeEnabled {
file_inference_service_proto_msgTypes[0].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*InferenceServiceIdentifier); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[1].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Env); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Container); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*InferenceServiceTransformer); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*InferenceServicePredictor); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[5].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*CreateInferenceServiceRequest); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[6].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*DeployModelResponse); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[7].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*InferenceServiceCondition); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[8].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*GetInferenceServiceResponse); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_inference_service_proto_msgTypes[9].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*InferenceServiceEndpoints); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
}
type x struct{}
out := protoimpl.TypeBuilder{
File: protoimpl.DescBuilder{
GoPackagePath: reflect.TypeOf(x{}).PkgPath(),
RawDescriptor: file_inference_service_proto_rawDesc,
NumEnums: 0,
NumMessages: 10,
NumExtensions: 0,
NumServices: 1,
},
GoTypes: file_inference_service_proto_goTypes,
DependencyIndexes: file_inference_service_proto_depIdxs,
MessageInfos: file_inference_service_proto_msgTypes,
}.Build()
File_inference_service_proto = out.File
file_inference_service_proto_rawDesc = nil
file_inference_service_proto_goTypes = nil
file_inference_service_proto_depIdxs = nil
}

View File

@@ -0,0 +1,439 @@
// Code generated by protoc-gen-grpc-gateway. DO NOT EDIT.
// source: inference_service.proto
/*
Package gen is a reverse proxy.
It translates gRPC into RESTful JSON APIs.
*/
package gen
import (
"context"
"io"
"net/http"
"github.com/grpc-ecosystem/grpc-gateway/v2/runtime"
"github.com/grpc-ecosystem/grpc-gateway/v2/utilities"
"google.golang.org/grpc"
"google.golang.org/grpc/codes"
"google.golang.org/grpc/grpclog"
"google.golang.org/grpc/metadata"
"google.golang.org/grpc/status"
"google.golang.org/protobuf/proto"
)
// Suppress "imported and not used" errors
var _ codes.Code
var _ io.Reader
var _ status.Status
var _ = runtime.String
var _ = utilities.NewDoubleArray
var _ = metadata.Join
func request_InferenceService_CreateInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, client InferenceServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq CreateInferenceServiceRequest
var metadata runtime.ServerMetadata
newReader, berr := utilities.IOReaderFactory(req.Body)
if berr != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", berr)
}
if err := marshaler.NewDecoder(newReader()).Decode(&protoReq); err != nil && err != io.EOF {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
msg, err := client.CreateInferenceService(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_InferenceService_CreateInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, server InferenceServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq CreateInferenceServiceRequest
var metadata runtime.ServerMetadata
newReader, berr := utilities.IOReaderFactory(req.Body)
if berr != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", berr)
}
if err := marshaler.NewDecoder(newReader()).Decode(&protoReq); err != nil && err != io.EOF {
return nil, metadata, status.Errorf(codes.InvalidArgument, "%v", err)
}
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
msg, err := server.CreateInferenceService(ctx, &protoReq)
return msg, metadata, err
}
func request_InferenceService_GetInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, client InferenceServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq InferenceServiceIdentifier
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := client.GetInferenceService(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_InferenceService_GetInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, server InferenceServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq InferenceServiceIdentifier
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := server.GetInferenceService(ctx, &protoReq)
return msg, metadata, err
}
func request_InferenceService_DeleteInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, client InferenceServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq InferenceServiceIdentifier
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := client.DeleteInferenceService(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_InferenceService_DeleteInferenceService_0(ctx context.Context, marshaler runtime.Marshaler, server InferenceServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq InferenceServiceIdentifier
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := server.DeleteInferenceService(ctx, &protoReq)
return msg, metadata, err
}
// RegisterInferenceServiceHandlerServer registers the http handlers for service InferenceService to "mux".
// UnaryRPC :call InferenceServiceServer directly.
// StreamingRPC :currently unsupported pending https://github.com/grpc/grpc-go/issues/906.
// Note that using this registration option will cause many gRPC library features to stop working. Consider using RegisterInferenceServiceHandlerFromEndpoint instead.
func RegisterInferenceServiceHandlerServer(ctx context.Context, mux *runtime.ServeMux, server InferenceServiceServer) error {
mux.Handle("POST", pattern_InferenceService_CreateInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.InferenceService/CreateInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_InferenceService_CreateInferenceService_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_CreateInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_InferenceService_GetInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.InferenceService/GetInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_InferenceService_GetInferenceService_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_GetInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("DELETE", pattern_InferenceService_DeleteInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.InferenceService/DeleteInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_InferenceService_DeleteInferenceService_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_DeleteInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
// RegisterInferenceServiceHandlerFromEndpoint is same as RegisterInferenceServiceHandler but
// automatically dials to "endpoint" and closes the connection when "ctx" gets done.
func RegisterInferenceServiceHandlerFromEndpoint(ctx context.Context, mux *runtime.ServeMux, endpoint string, opts []grpc.DialOption) (err error) {
conn, err := grpc.Dial(endpoint, opts...)
if err != nil {
return err
}
defer func() {
if err != nil {
if cerr := conn.Close(); cerr != nil {
grpclog.Infof("Failed to close conn to %s: %v", endpoint, cerr)
}
return
}
go func() {
<-ctx.Done()
if cerr := conn.Close(); cerr != nil {
grpclog.Infof("Failed to close conn to %s: %v", endpoint, cerr)
}
}()
}()
return RegisterInferenceServiceHandler(ctx, mux, conn)
}
// RegisterInferenceServiceHandler registers the http handlers for service InferenceService to "mux".
// The handlers forward requests to the grpc endpoint over "conn".
func RegisterInferenceServiceHandler(ctx context.Context, mux *runtime.ServeMux, conn *grpc.ClientConn) error {
return RegisterInferenceServiceHandlerClient(ctx, mux, NewInferenceServiceClient(conn))
}
// RegisterInferenceServiceHandlerClient registers the http handlers for service InferenceService
// to "mux". The handlers forward requests to the grpc endpoint over the given implementation of "InferenceServiceClient".
// Note: the gRPC framework executes interceptors within the gRPC handler. If the passed in "InferenceServiceClient"
// doesn't go through the normal gRPC flow (creating a gRPC client etc.) then it will be up to the passed in
// "InferenceServiceClient" to call the correct interceptors.
func RegisterInferenceServiceHandlerClient(ctx context.Context, mux *runtime.ServeMux, client InferenceServiceClient) error {
mux.Handle("POST", pattern_InferenceService_CreateInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.InferenceService/CreateInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_InferenceService_CreateInferenceService_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_CreateInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_InferenceService_GetInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.InferenceService/GetInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_InferenceService_GetInferenceService_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_GetInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("DELETE", pattern_InferenceService_DeleteInferenceService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.InferenceService/DeleteInferenceService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_InferenceService_DeleteInferenceService_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_InferenceService_DeleteInferenceService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
var (
pattern_InferenceService_CreateInferenceService_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3}, []string{"apis", "v1beta1", "namespace", "inferenceservice"}, ""))
pattern_InferenceService_GetInferenceService_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4}, []string{"apis", "v1beta1", "namespace", "inferenceservice", "name"}, ""))
pattern_InferenceService_DeleteInferenceService_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4}, []string{"apis", "v1beta1", "namespace", "inferenceservice", "name"}, ""))
)
var (
forward_InferenceService_CreateInferenceService_0 = runtime.ForwardResponseMessage
forward_InferenceService_GetInferenceService_0 = runtime.ForwardResponseMessage
forward_InferenceService_DeleteInferenceService_0 = runtime.ForwardResponseMessage
)

View File

@@ -0,0 +1,170 @@
// Code generated by protoc-gen-go-grpc. DO NOT EDIT.
package gen
import (
context "context"
grpc "google.golang.org/grpc"
codes "google.golang.org/grpc/codes"
status "google.golang.org/grpc/status"
emptypb "google.golang.org/protobuf/types/known/emptypb"
)
// This is a compile-time assertion to ensure that this generated file
// is compatible with the grpc package it is being compiled against.
const _ = grpc.SupportPackageIsVersion7
// InferenceServiceClient is the client API for InferenceService service.
//
// For semantics around ctx use and closing/ending streaming RPCs, please refer to https://pkg.go.dev/google.golang.org/grpc/?tab=doc#ClientConn.NewStream.
type InferenceServiceClient interface {
CreateInferenceService(ctx context.Context, in *CreateInferenceServiceRequest, opts ...grpc.CallOption) (*GetInferenceServiceResponse, error)
GetInferenceService(ctx context.Context, in *InferenceServiceIdentifier, opts ...grpc.CallOption) (*GetInferenceServiceResponse, error)
DeleteInferenceService(ctx context.Context, in *InferenceServiceIdentifier, opts ...grpc.CallOption) (*emptypb.Empty, error)
}
type inferenceServiceClient struct {
cc grpc.ClientConnInterface
}
func NewInferenceServiceClient(cc grpc.ClientConnInterface) InferenceServiceClient {
return &inferenceServiceClient{cc}
}
func (c *inferenceServiceClient) CreateInferenceService(ctx context.Context, in *CreateInferenceServiceRequest, opts ...grpc.CallOption) (*GetInferenceServiceResponse, error) {
out := new(GetInferenceServiceResponse)
err := c.cc.Invoke(ctx, "/api.InferenceService/CreateInferenceService", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
func (c *inferenceServiceClient) GetInferenceService(ctx context.Context, in *InferenceServiceIdentifier, opts ...grpc.CallOption) (*GetInferenceServiceResponse, error) {
out := new(GetInferenceServiceResponse)
err := c.cc.Invoke(ctx, "/api.InferenceService/GetInferenceService", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
func (c *inferenceServiceClient) DeleteInferenceService(ctx context.Context, in *InferenceServiceIdentifier, opts ...grpc.CallOption) (*emptypb.Empty, error) {
out := new(emptypb.Empty)
err := c.cc.Invoke(ctx, "/api.InferenceService/DeleteInferenceService", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
// InferenceServiceServer is the server API for InferenceService service.
// All implementations must embed UnimplementedInferenceServiceServer
// for forward compatibility
type InferenceServiceServer interface {
CreateInferenceService(context.Context, *CreateInferenceServiceRequest) (*GetInferenceServiceResponse, error)
GetInferenceService(context.Context, *InferenceServiceIdentifier) (*GetInferenceServiceResponse, error)
DeleteInferenceService(context.Context, *InferenceServiceIdentifier) (*emptypb.Empty, error)
mustEmbedUnimplementedInferenceServiceServer()
}
// UnimplementedInferenceServiceServer must be embedded to have forward compatible implementations.
type UnimplementedInferenceServiceServer struct {
}
func (UnimplementedInferenceServiceServer) CreateInferenceService(context.Context, *CreateInferenceServiceRequest) (*GetInferenceServiceResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method CreateInferenceService not implemented")
}
func (UnimplementedInferenceServiceServer) GetInferenceService(context.Context, *InferenceServiceIdentifier) (*GetInferenceServiceResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method GetInferenceService not implemented")
}
func (UnimplementedInferenceServiceServer) DeleteInferenceService(context.Context, *InferenceServiceIdentifier) (*emptypb.Empty, error) {
return nil, status.Errorf(codes.Unimplemented, "method DeleteInferenceService not implemented")
}
func (UnimplementedInferenceServiceServer) mustEmbedUnimplementedInferenceServiceServer() {}
// UnsafeInferenceServiceServer may be embedded to opt out of forward compatibility for this service.
// Use of this interface is not recommended, as added methods to InferenceServiceServer will
// result in compilation errors.
type UnsafeInferenceServiceServer interface {
mustEmbedUnimplementedInferenceServiceServer()
}
func RegisterInferenceServiceServer(s grpc.ServiceRegistrar, srv InferenceServiceServer) {
s.RegisterService(&_InferenceService_serviceDesc, srv)
}
func _InferenceService_CreateInferenceService_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(CreateInferenceServiceRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(InferenceServiceServer).CreateInferenceService(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.InferenceService/CreateInferenceService",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(InferenceServiceServer).CreateInferenceService(ctx, req.(*CreateInferenceServiceRequest))
}
return interceptor(ctx, in, info, handler)
}
func _InferenceService_GetInferenceService_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(InferenceServiceIdentifier)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(InferenceServiceServer).GetInferenceService(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.InferenceService/GetInferenceService",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(InferenceServiceServer).GetInferenceService(ctx, req.(*InferenceServiceIdentifier))
}
return interceptor(ctx, in, info, handler)
}
func _InferenceService_DeleteInferenceService_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(InferenceServiceIdentifier)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(InferenceServiceServer).DeleteInferenceService(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.InferenceService/DeleteInferenceService",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(InferenceServiceServer).DeleteInferenceService(ctx, req.(*InferenceServiceIdentifier))
}
return interceptor(ctx, in, info, handler)
}
var _InferenceService_serviceDesc = grpc.ServiceDesc{
ServiceName: "api.InferenceService",
HandlerType: (*InferenceServiceServer)(nil),
Methods: []grpc.MethodDesc{
{
MethodName: "CreateInferenceService",
Handler: _InferenceService_CreateInferenceService_Handler,
},
{
MethodName: "GetInferenceService",
Handler: _InferenceService_GetInferenceService_Handler,
},
{
MethodName: "DeleteInferenceService",
Handler: _InferenceService_DeleteInferenceService_Handler,
},
},
Streams: []grpc.StreamDesc{},
Metadata: "inference_service.proto",
}

View File

@@ -220,7 +220,8 @@ type Namespace struct {
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
SourceName string `protobuf:"bytes,2,opt,name=sourceName,proto3" json:"sourceName,omitempty"`
}
func (x *Namespace) Reset() {
@@ -262,6 +263,13 @@ func (x *Namespace) GetName() string {
return ""
}
func (x *Namespace) GetSourceName() string {
if x != nil {
return x.SourceName
}
return ""
}
var File_namespace_proto protoreflect.FileDescriptor
var file_namespace_proto_rawDesc = []byte{
@@ -289,9 +297,11 @@ var file_namespace_proto_rawDesc = []byte{
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View File

@@ -136,6 +136,100 @@ func (x *GetServiceRequest) GetName() string {
return ""
}
type HasServiceRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
}
func (x *HasServiceRequest) Reset() {
*x = HasServiceRequest{}
if protoimpl.UnsafeEnabled {
mi := &file_services_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *HasServiceRequest) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*HasServiceRequest) ProtoMessage() {}
func (x *HasServiceRequest) ProtoReflect() protoreflect.Message {
mi := &file_services_proto_msgTypes[2]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use HasServiceRequest.ProtoReflect.Descriptor instead.
func (*HasServiceRequest) Descriptor() ([]byte, []int) {
return file_services_proto_rawDescGZIP(), []int{2}
}
func (x *HasServiceRequest) GetName() string {
if x != nil {
return x.Name
}
return ""
}
type HasServiceResponse struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
HasService bool `protobuf:"varint,1,opt,name=hasService,proto3" json:"hasService,omitempty"`
}
func (x *HasServiceResponse) Reset() {
*x = HasServiceResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_services_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *HasServiceResponse) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*HasServiceResponse) ProtoMessage() {}
func (x *HasServiceResponse) ProtoReflect() protoreflect.Message {
mi := &file_services_proto_msgTypes[3]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
// Deprecated: Use HasServiceResponse.ProtoReflect.Descriptor instead.
func (*HasServiceResponse) Descriptor() ([]byte, []int) {
return file_services_proto_rawDescGZIP(), []int{3}
}
func (x *HasServiceResponse) GetHasService() bool {
if x != nil {
return x.HasService
}
return false
}
type ListServicesRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
@@ -149,7 +243,7 @@ type ListServicesRequest struct {
func (x *ListServicesRequest) Reset() {
*x = ListServicesRequest{}
if protoimpl.UnsafeEnabled {
mi := &file_services_proto_msgTypes[2]
mi := &file_services_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
@@ -162,7 +256,7 @@ func (x *ListServicesRequest) String() string {
func (*ListServicesRequest) ProtoMessage() {}
func (x *ListServicesRequest) ProtoReflect() protoreflect.Message {
mi := &file_services_proto_msgTypes[2]
mi := &file_services_proto_msgTypes[4]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
@@ -175,7 +269,7 @@ func (x *ListServicesRequest) ProtoReflect() protoreflect.Message {
// Deprecated: Use ListServicesRequest.ProtoReflect.Descriptor instead.
func (*ListServicesRequest) Descriptor() ([]byte, []int) {
return file_services_proto_rawDescGZIP(), []int{2}
return file_services_proto_rawDescGZIP(), []int{4}
}
func (x *ListServicesRequest) GetNamespace() string {
@@ -214,7 +308,7 @@ type ListServicesResponse struct {
func (x *ListServicesResponse) Reset() {
*x = ListServicesResponse{}
if protoimpl.UnsafeEnabled {
mi := &file_services_proto_msgTypes[3]
mi := &file_services_proto_msgTypes[5]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
@@ -227,7 +321,7 @@ func (x *ListServicesResponse) String() string {
func (*ListServicesResponse) ProtoMessage() {}
func (x *ListServicesResponse) ProtoReflect() protoreflect.Message {
mi := &file_services_proto_msgTypes[3]
mi := &file_services_proto_msgTypes[5]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
@@ -240,7 +334,7 @@ func (x *ListServicesResponse) ProtoReflect() protoreflect.Message {
// Deprecated: Use ListServicesResponse.ProtoReflect.Descriptor instead.
func (*ListServicesResponse) Descriptor() ([]byte, []int) {
return file_services_proto_rawDescGZIP(), []int{3}
return file_services_proto_rawDescGZIP(), []int{5}
}
func (x *ListServicesResponse) GetCount() int32 {
@@ -291,41 +385,53 @@ var file_services_proto_rawDesc = []byte{
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0x74, 0x1a, 0x17, 0x2e, 0x61, 0x70, 0x69, 0x2e, 0x48, 0x61, 0x73, 0x53, 0x65, 0x72, 0x76, 0x69,
0x63, 0x65, 0x52, 0x65, 0x73, 0x70, 0x6f, 0x6e, 0x73, 0x65, 0x22, 0x23, 0x82, 0xd3, 0xe4, 0x93,
0x02, 0x1d, 0x12, 0x1b, 0x2f, 0x61, 0x70, 0x69, 0x73, 0x2f, 0x76, 0x31, 0x62, 0x65, 0x74, 0x61,
0x2f, 0x73, 0x65, 0x72, 0x76, 0x69, 0x63, 0x65, 0x2f, 0x7b, 0x6e, 0x61, 0x6d, 0x65, 0x7d, 0x42,
0x24, 0x5a, 0x22, 0x67, 0x69, 0x74, 0x68, 0x75, 0x62, 0x2e, 0x63, 0x6f, 0x6d, 0x2f, 0x6f, 0x6e,
0x65, 0x70, 0x61, 0x6e, 0x65, 0x6c, 0x69, 0x6f, 0x2f, 0x63, 0x6f, 0x72, 0x65, 0x2f, 0x61, 0x70,
0x69, 0x2f, 0x67, 0x65, 0x6e, 0x62, 0x06, 0x70, 0x72, 0x6f, 0x74, 0x6f, 0x33,
}
var (
@@ -340,21 +446,25 @@ func file_services_proto_rawDescGZIP() []byte {
return file_services_proto_rawDescData
}
var file_services_proto_msgTypes = make([]protoimpl.MessageInfo, 4)
var file_services_proto_msgTypes = make([]protoimpl.MessageInfo, 6)
var file_services_proto_goTypes = []interface{}{
(*Service)(nil), // 0: api.Service
(*GetServiceRequest)(nil), // 1: api.GetServiceRequest
(*ListServicesRequest)(nil), // 2: api.ListServicesRequest
(*ListServicesResponse)(nil), // 3: api.ListServicesResponse
(*HasServiceRequest)(nil), // 2: api.HasServiceRequest
(*HasServiceResponse)(nil), // 3: api.HasServiceResponse
(*ListServicesRequest)(nil), // 4: api.ListServicesRequest
(*ListServicesResponse)(nil), // 5: api.ListServicesResponse
}
var file_services_proto_depIdxs = []int32{
0, // 0: api.ListServicesResponse.services:type_name -> api.Service
1, // 1: api.ServiceService.GetService:input_type -> api.GetServiceRequest
2, // 2: api.ServiceService.ListServices:input_type -> api.ListServicesRequest
0, // 3: api.ServiceService.GetService:output_type -> api.Service
3, // 4: api.ServiceService.ListServices:output_type -> api.ListServicesResponse
3, // [3:5] is the sub-list for method output_type
1, // [1:3] is the sub-list for method input_type
4, // 2: api.ServiceService.ListServices:input_type -> api.ListServicesRequest
2, // 3: api.ServiceService.HasService:input_type -> api.HasServiceRequest
0, // 4: api.ServiceService.GetService:output_type -> api.Service
5, // 5: api.ServiceService.ListServices:output_type -> api.ListServicesResponse
3, // 6: api.ServiceService.HasService:output_type -> api.HasServiceResponse
4, // [4:7] is the sub-list for method output_type
1, // [1:4] is the sub-list for method input_type
1, // [1:1] is the sub-list for extension type_name
1, // [1:1] is the sub-list for extension extendee
0, // [0:1] is the sub-list for field type_name
@@ -391,7 +501,7 @@ func file_services_proto_init() {
}
}
file_services_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ListServicesRequest); i {
switch v := v.(*HasServiceRequest); i {
case 0:
return &v.state
case 1:
@@ -403,6 +513,30 @@ func file_services_proto_init() {
}
}
file_services_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*HasServiceResponse); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_services_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ListServicesRequest); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_services_proto_msgTypes[5].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ListServicesResponse); i {
case 0:
return &v.state
@@ -421,7 +555,7 @@ func file_services_proto_init() {
GoPackagePath: reflect.TypeOf(x{}).PkgPath(),
RawDescriptor: file_services_proto_rawDesc,
NumEnums: 0,
NumMessages: 4,
NumMessages: 6,
NumExtensions: 0,
NumServices: 1,
},

View File

@@ -173,6 +173,58 @@ func local_request_ServiceService_ListServices_0(ctx context.Context, marshaler
}
func request_ServiceService_HasService_0(ctx context.Context, marshaler runtime.Marshaler, client ServiceServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq HasServiceRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := client.HasService(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_ServiceService_HasService_0(ctx context.Context, marshaler runtime.Marshaler, server ServiceServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq HasServiceRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["name"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "name")
}
protoReq.Name, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "name", err)
}
msg, err := server.HasService(ctx, &protoReq)
return msg, metadata, err
}
// RegisterServiceServiceHandlerServer registers the http handlers for service ServiceService to "mux".
// UnaryRPC :call ServiceServiceServer directly.
// StreamingRPC :currently unsupported pending https://github.com/grpc/grpc-go/issues/906.
@@ -225,6 +277,29 @@ func RegisterServiceServiceHandlerServer(ctx context.Context, mux *runtime.Serve
})
mux.Handle("GET", pattern_ServiceService_HasService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.ServiceService/HasService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_ServiceService_HasService_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_ServiceService_HasService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
@@ -306,6 +381,26 @@ func RegisterServiceServiceHandlerClient(ctx context.Context, mux *runtime.Serve
})
mux.Handle("GET", pattern_ServiceService_HasService_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.ServiceService/HasService")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_ServiceService_HasService_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_ServiceService_HasService_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
return nil
}
@@ -313,10 +408,14 @@ var (
pattern_ServiceService_GetService_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4}, []string{"apis", "v1beta1", "namespace", "service", "name"}, ""))
pattern_ServiceService_ListServices_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3}, []string{"apis", "v1beta1", "namespace", "service"}, ""))
pattern_ServiceService_HasService_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 2, 2, 1, 0, 4, 1, 5, 3}, []string{"apis", "v1beta", "service", "name"}, ""))
)
var (
forward_ServiceService_GetService_0 = runtime.ForwardResponseMessage
forward_ServiceService_ListServices_0 = runtime.ForwardResponseMessage
forward_ServiceService_HasService_0 = runtime.ForwardResponseMessage
)

View File

@@ -19,6 +19,7 @@ const _ = grpc.SupportPackageIsVersion7
type ServiceServiceClient interface {
GetService(ctx context.Context, in *GetServiceRequest, opts ...grpc.CallOption) (*Service, error)
ListServices(ctx context.Context, in *ListServicesRequest, opts ...grpc.CallOption) (*ListServicesResponse, error)
HasService(ctx context.Context, in *HasServiceRequest, opts ...grpc.CallOption) (*HasServiceResponse, error)
}
type serviceServiceClient struct {
@@ -47,12 +48,22 @@ func (c *serviceServiceClient) ListServices(ctx context.Context, in *ListService
return out, nil
}
func (c *serviceServiceClient) HasService(ctx context.Context, in *HasServiceRequest, opts ...grpc.CallOption) (*HasServiceResponse, error) {
out := new(HasServiceResponse)
err := c.cc.Invoke(ctx, "/api.ServiceService/HasService", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
// ServiceServiceServer is the server API for ServiceService service.
// All implementations must embed UnimplementedServiceServiceServer
// for forward compatibility
type ServiceServiceServer interface {
GetService(context.Context, *GetServiceRequest) (*Service, error)
ListServices(context.Context, *ListServicesRequest) (*ListServicesResponse, error)
HasService(context.Context, *HasServiceRequest) (*HasServiceResponse, error)
mustEmbedUnimplementedServiceServiceServer()
}
@@ -66,6 +77,9 @@ func (UnimplementedServiceServiceServer) GetService(context.Context, *GetService
func (UnimplementedServiceServiceServer) ListServices(context.Context, *ListServicesRequest) (*ListServicesResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method ListServices not implemented")
}
func (UnimplementedServiceServiceServer) HasService(context.Context, *HasServiceRequest) (*HasServiceResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method HasService not implemented")
}
func (UnimplementedServiceServiceServer) mustEmbedUnimplementedServiceServiceServer() {}
// UnsafeServiceServiceServer may be embedded to opt out of forward compatibility for this service.
@@ -115,6 +129,24 @@ func _ServiceService_ListServices_Handler(srv interface{}, ctx context.Context,
return interceptor(ctx, in, info, handler)
}
func _ServiceService_HasService_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(HasServiceRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(ServiceServiceServer).HasService(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.ServiceService/HasService",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(ServiceServiceServer).HasService(ctx, req.(*HasServiceRequest))
}
return interceptor(ctx, in, info, handler)
}
var _ServiceService_serviceDesc = grpc.ServiceDesc{
ServiceName: "api.ServiceService",
HandlerType: (*ServiceServiceServer)(nil),
@@ -127,6 +159,10 @@ var _ServiceService_serviceDesc = grpc.ServiceDesc{
MethodName: "ListServices",
Handler: _ServiceService_ListServices_Handler,
},
{
MethodName: "HasService",
Handler: _ServiceService_HasService_Handler,
},
},
Streams: []grpc.StreamDesc{},
Metadata: "services.proto",

File diff suppressed because it is too large Load Diff

View File

@@ -709,190 +709,6 @@ func local_request_WorkflowService_TerminateWorkflowExecution_0(ctx context.Cont
}
func request_WorkflowService_GetArtifact_0(ctx context.Context, marshaler runtime.Marshaler, client WorkflowServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq GetArtifactRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["uid"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "uid")
}
protoReq.Uid, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "uid", err)
}
val, ok = pathParams["key"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "key")
}
protoReq.Key, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "key", err)
}
msg, err := client.GetArtifact(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_WorkflowService_GetArtifact_0(ctx context.Context, marshaler runtime.Marshaler, server WorkflowServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq GetArtifactRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["uid"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "uid")
}
protoReq.Uid, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "uid", err)
}
val, ok = pathParams["key"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "key")
}
protoReq.Key, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "key", err)
}
msg, err := server.GetArtifact(ctx, &protoReq)
return msg, metadata, err
}
func request_WorkflowService_ListFiles_0(ctx context.Context, marshaler runtime.Marshaler, client WorkflowServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq ListFilesRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["uid"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "uid")
}
protoReq.Uid, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "uid", err)
}
val, ok = pathParams["path"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "path")
}
protoReq.Path, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "path", err)
}
msg, err := client.ListFiles(ctx, &protoReq, grpc.Header(&metadata.HeaderMD), grpc.Trailer(&metadata.TrailerMD))
return msg, metadata, err
}
func local_request_WorkflowService_ListFiles_0(ctx context.Context, marshaler runtime.Marshaler, server WorkflowServiceServer, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq ListFilesRequest
var metadata runtime.ServerMetadata
var (
val string
ok bool
err error
_ = err
)
val, ok = pathParams["namespace"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "namespace")
}
protoReq.Namespace, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "namespace", err)
}
val, ok = pathParams["uid"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "uid")
}
protoReq.Uid, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "uid", err)
}
val, ok = pathParams["path"]
if !ok {
return nil, metadata, status.Errorf(codes.InvalidArgument, "missing parameter %s", "path")
}
protoReq.Path, err = runtime.String(val)
if err != nil {
return nil, metadata, status.Errorf(codes.InvalidArgument, "type mismatch, parameter: %s, error: %v", "path", err)
}
msg, err := server.ListFiles(ctx, &protoReq)
return msg, metadata, err
}
func request_WorkflowService_AddWorkflowExecutionStatistics_0(ctx context.Context, marshaler runtime.Marshaler, client WorkflowServiceClient, req *http.Request, pathParams map[string]string) (proto.Message, runtime.ServerMetadata, error) {
var protoReq AddWorkflowExecutionStatisticRequest
var metadata runtime.ServerMetadata
@@ -1609,52 +1425,6 @@ func RegisterWorkflowServiceHandlerServer(ctx context.Context, mux *runtime.Serv
})
mux.Handle("GET", pattern_WorkflowService_GetArtifact_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.WorkflowService/GetArtifact")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_WorkflowService_GetArtifact_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_WorkflowService_GetArtifact_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_WorkflowService_ListFiles_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
var stream runtime.ServerTransportStream
ctx = grpc.NewContextWithServerTransportStream(ctx, &stream)
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateIncomingContext(ctx, mux, req, "/api.WorkflowService/ListFiles")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := local_request_WorkflowService_ListFiles_0(rctx, inboundMarshaler, server, req, pathParams)
md.HeaderMD, md.TrailerMD = metadata.Join(md.HeaderMD, stream.Header()), metadata.Join(md.TrailerMD, stream.Trailer())
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_WorkflowService_ListFiles_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("POST", pattern_WorkflowService_AddWorkflowExecutionStatistics_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
@@ -2034,46 +1804,6 @@ func RegisterWorkflowServiceHandlerClient(ctx context.Context, mux *runtime.Serv
})
mux.Handle("GET", pattern_WorkflowService_GetArtifact_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.WorkflowService/GetArtifact")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_WorkflowService_GetArtifact_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_WorkflowService_GetArtifact_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("GET", pattern_WorkflowService_ListFiles_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
inboundMarshaler, outboundMarshaler := runtime.MarshalerForRequest(mux, req)
rctx, err := runtime.AnnotateContext(ctx, mux, req, "/api.WorkflowService/ListFiles")
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
resp, md, err := request_WorkflowService_ListFiles_0(rctx, inboundMarshaler, client, req, pathParams)
ctx = runtime.NewServerMetadataContext(ctx, md)
if err != nil {
runtime.HTTPError(ctx, mux, outboundMarshaler, w, req, err)
return
}
forward_WorkflowService_ListFiles_0(ctx, mux, outboundMarshaler, w, req, resp, mux.GetForwardResponseOptions()...)
})
mux.Handle("POST", pattern_WorkflowService_AddWorkflowExecutionStatistics_0, func(w http.ResponseWriter, req *http.Request, pathParams map[string]string) {
ctx, cancel := context.WithCancel(req.Context())
defer cancel()
@@ -2218,10 +1948,6 @@ var (
pattern_WorkflowService_TerminateWorkflowExecution_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4, 2, 5}, []string{"apis", "v1beta1", "namespace", "workflow_executions", "uid", "terminate"}, ""))
pattern_WorkflowService_GetArtifact_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4, 2, 5, 3, 0, 4, 1, 5, 6}, []string{"apis", "v1beta1", "namespace", "workflow_executions", "uid", "artifacts", "key"}, ""))
pattern_WorkflowService_ListFiles_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4, 2, 5, 3, 0, 4, 1, 5, 6}, []string{"apis", "v1beta1", "namespace", "workflow_executions", "uid", "files", "path"}, ""))
pattern_WorkflowService_AddWorkflowExecutionStatistics_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4, 2, 5}, []string{"apis", "v1beta1", "namespace", "workflow_executions", "uid", "statistics"}, ""))
pattern_WorkflowService_CronStartWorkflowExecutionStatistic_0 = runtime.MustPattern(runtime.NewPattern(1, []int{2, 0, 2, 1, 1, 0, 4, 1, 5, 2, 2, 3, 1, 0, 4, 1, 5, 4, 2, 5}, []string{"apis", "v1beta1", "namespace", "workflow_executions", "uid", "cron_start_statistics"}, ""))
@@ -2256,10 +1982,6 @@ var (
forward_WorkflowService_TerminateWorkflowExecution_0 = runtime.ForwardResponseMessage
forward_WorkflowService_GetArtifact_0 = runtime.ForwardResponseMessage
forward_WorkflowService_ListFiles_0 = runtime.ForwardResponseMessage
forward_WorkflowService_AddWorkflowExecutionStatistics_0 = runtime.ForwardResponseMessage
forward_WorkflowService_CronStartWorkflowExecutionStatistic_0 = runtime.ForwardResponseMessage

View File

@@ -30,8 +30,6 @@ type WorkflowServiceClient interface {
GetWorkflowExecutionMetrics(ctx context.Context, in *GetWorkflowExecutionMetricsRequest, opts ...grpc.CallOption) (*GetWorkflowExecutionMetricsResponse, error)
ResubmitWorkflowExecution(ctx context.Context, in *ResubmitWorkflowExecutionRequest, opts ...grpc.CallOption) (*WorkflowExecution, error)
TerminateWorkflowExecution(ctx context.Context, in *TerminateWorkflowExecutionRequest, opts ...grpc.CallOption) (*emptypb.Empty, error)
GetArtifact(ctx context.Context, in *GetArtifactRequest, opts ...grpc.CallOption) (*ArtifactResponse, error)
ListFiles(ctx context.Context, in *ListFilesRequest, opts ...grpc.CallOption) (*ListFilesResponse, error)
AddWorkflowExecutionStatistics(ctx context.Context, in *AddWorkflowExecutionStatisticRequest, opts ...grpc.CallOption) (*emptypb.Empty, error)
CronStartWorkflowExecutionStatistic(ctx context.Context, in *CronStartWorkflowExecutionStatisticRequest, opts ...grpc.CallOption) (*emptypb.Empty, error)
UpdateWorkflowExecutionStatus(ctx context.Context, in *UpdateWorkflowExecutionStatusRequest, opts ...grpc.CallOption) (*emptypb.Empty, error)
@@ -184,24 +182,6 @@ func (c *workflowServiceClient) TerminateWorkflowExecution(ctx context.Context,
return out, nil
}
func (c *workflowServiceClient) GetArtifact(ctx context.Context, in *GetArtifactRequest, opts ...grpc.CallOption) (*ArtifactResponse, error) {
out := new(ArtifactResponse)
err := c.cc.Invoke(ctx, "/api.WorkflowService/GetArtifact", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
func (c *workflowServiceClient) ListFiles(ctx context.Context, in *ListFilesRequest, opts ...grpc.CallOption) (*ListFilesResponse, error) {
out := new(ListFilesResponse)
err := c.cc.Invoke(ctx, "/api.WorkflowService/ListFiles", in, out, opts...)
if err != nil {
return nil, err
}
return out, nil
}
func (c *workflowServiceClient) AddWorkflowExecutionStatistics(ctx context.Context, in *AddWorkflowExecutionStatisticRequest, opts ...grpc.CallOption) (*emptypb.Empty, error) {
out := new(emptypb.Empty)
err := c.cc.Invoke(ctx, "/api.WorkflowService/AddWorkflowExecutionStatistics", in, out, opts...)
@@ -272,8 +252,6 @@ type WorkflowServiceServer interface {
GetWorkflowExecutionMetrics(context.Context, *GetWorkflowExecutionMetricsRequest) (*GetWorkflowExecutionMetricsResponse, error)
ResubmitWorkflowExecution(context.Context, *ResubmitWorkflowExecutionRequest) (*WorkflowExecution, error)
TerminateWorkflowExecution(context.Context, *TerminateWorkflowExecutionRequest) (*emptypb.Empty, error)
GetArtifact(context.Context, *GetArtifactRequest) (*ArtifactResponse, error)
ListFiles(context.Context, *ListFilesRequest) (*ListFilesResponse, error)
AddWorkflowExecutionStatistics(context.Context, *AddWorkflowExecutionStatisticRequest) (*emptypb.Empty, error)
CronStartWorkflowExecutionStatistic(context.Context, *CronStartWorkflowExecutionStatisticRequest) (*emptypb.Empty, error)
UpdateWorkflowExecutionStatus(context.Context, *UpdateWorkflowExecutionStatusRequest) (*emptypb.Empty, error)
@@ -317,12 +295,6 @@ func (UnimplementedWorkflowServiceServer) ResubmitWorkflowExecution(context.Cont
func (UnimplementedWorkflowServiceServer) TerminateWorkflowExecution(context.Context, *TerminateWorkflowExecutionRequest) (*emptypb.Empty, error) {
return nil, status.Errorf(codes.Unimplemented, "method TerminateWorkflowExecution not implemented")
}
func (UnimplementedWorkflowServiceServer) GetArtifact(context.Context, *GetArtifactRequest) (*ArtifactResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method GetArtifact not implemented")
}
func (UnimplementedWorkflowServiceServer) ListFiles(context.Context, *ListFilesRequest) (*ListFilesResponse, error) {
return nil, status.Errorf(codes.Unimplemented, "method ListFiles not implemented")
}
func (UnimplementedWorkflowServiceServer) AddWorkflowExecutionStatistics(context.Context, *AddWorkflowExecutionStatisticRequest) (*emptypb.Empty, error) {
return nil, status.Errorf(codes.Unimplemented, "method AddWorkflowExecutionStatistics not implemented")
}
@@ -540,42 +512,6 @@ func _WorkflowService_TerminateWorkflowExecution_Handler(srv interface{}, ctx co
return interceptor(ctx, in, info, handler)
}
func _WorkflowService_GetArtifact_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(GetArtifactRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(WorkflowServiceServer).GetArtifact(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.WorkflowService/GetArtifact",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(WorkflowServiceServer).GetArtifact(ctx, req.(*GetArtifactRequest))
}
return interceptor(ctx, in, info, handler)
}
func _WorkflowService_ListFiles_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(ListFilesRequest)
if err := dec(in); err != nil {
return nil, err
}
if interceptor == nil {
return srv.(WorkflowServiceServer).ListFiles(ctx, in)
}
info := &grpc.UnaryServerInfo{
Server: srv,
FullMethod: "/api.WorkflowService/ListFiles",
}
handler := func(ctx context.Context, req interface{}) (interface{}, error) {
return srv.(WorkflowServiceServer).ListFiles(ctx, req.(*ListFilesRequest))
}
return interceptor(ctx, in, info, handler)
}
func _WorkflowService_AddWorkflowExecutionStatistics_Handler(srv interface{}, ctx context.Context, dec func(interface{}) error, interceptor grpc.UnaryServerInterceptor) (interface{}, error) {
in := new(AddWorkflowExecutionStatisticRequest)
if err := dec(in); err != nil {
@@ -720,14 +656,6 @@ var _WorkflowService_serviceDesc = grpc.ServiceDesc{
MethodName: "TerminateWorkflowExecution",
Handler: _WorkflowService_TerminateWorkflowExecution_Handler,
},
{
MethodName: "GetArtifact",
Handler: _WorkflowService_GetArtifact_Handler,
},
{
MethodName: "ListFiles",
Handler: _WorkflowService_ListFiles_Handler,
},
{
MethodName: "AddWorkflowExecutionStatistics",
Handler: _WorkflowService_AddWorkflowExecutionStatistics_Handler,

View File

@@ -842,19 +842,20 @@ type WorkflowTemplate struct {
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
CreatedAt string `protobuf:"bytes,1,opt,name=createdAt,proto3" json:"createdAt,omitempty"`
ModifiedAt string `protobuf:"bytes,2,opt,name=modifiedAt,proto3" json:"modifiedAt,omitempty"`
Uid string `protobuf:"bytes,3,opt,name=uid,proto3" json:"uid,omitempty"`
Name string `protobuf:"bytes,4,opt,name=name,proto3" json:"name,omitempty"`
Version int64 `protobuf:"varint,5,opt,name=version,proto3" json:"version,omitempty"`
Versions int64 `protobuf:"varint,6,opt,name=versions,proto3" json:"versions,omitempty"`
Manifest string `protobuf:"bytes,7,opt,name=manifest,proto3" json:"manifest,omitempty"`
IsLatest bool `protobuf:"varint,8,opt,name=isLatest,proto3" json:"isLatest,omitempty"`
IsArchived bool `protobuf:"varint,9,opt,name=isArchived,proto3" json:"isArchived,omitempty"`
Labels []*KeyValue `protobuf:"bytes,10,rep,name=labels,proto3" json:"labels,omitempty"`
Stats *WorkflowExecutionStatisticReport `protobuf:"bytes,11,opt,name=stats,proto3" json:"stats,omitempty"`
CronStats *CronWorkflowStatisticsReport `protobuf:"bytes,12,opt,name=cronStats,proto3" json:"cronStats,omitempty"`
Parameters []*Parameter `protobuf:"bytes,13,rep,name=parameters,proto3" json:"parameters,omitempty"`
CreatedAt string `protobuf:"bytes,1,opt,name=createdAt,proto3" json:"createdAt,omitempty"`
ModifiedAt string `protobuf:"bytes,2,opt,name=modifiedAt,proto3" json:"modifiedAt,omitempty"`
Uid string `protobuf:"bytes,3,opt,name=uid,proto3" json:"uid,omitempty"`
Name string `protobuf:"bytes,4,opt,name=name,proto3" json:"name,omitempty"`
Version int64 `protobuf:"varint,5,opt,name=version,proto3" json:"version,omitempty"`
Versions int64 `protobuf:"varint,6,opt,name=versions,proto3" json:"versions,omitempty"`
Manifest string `protobuf:"bytes,7,opt,name=manifest,proto3" json:"manifest,omitempty"`
IsLatest bool `protobuf:"varint,8,opt,name=isLatest,proto3" json:"isLatest,omitempty"`
IsArchived bool `protobuf:"varint,9,opt,name=isArchived,proto3" json:"isArchived,omitempty"`
Labels []*KeyValue `protobuf:"bytes,10,rep,name=labels,proto3" json:"labels,omitempty"`
Stats *WorkflowExecutionStatisticReport `protobuf:"bytes,11,opt,name=stats,proto3" json:"stats,omitempty"`
CronStats *CronWorkflowStatisticsReport `protobuf:"bytes,12,opt,name=cronStats,proto3" json:"cronStats,omitempty"`
Parameters []*Parameter `protobuf:"bytes,13,rep,name=parameters,proto3" json:"parameters,omitempty"`
Description string `protobuf:"bytes,14,opt,name=description,proto3" json:"description,omitempty"`
}
func (x *WorkflowTemplate) Reset() {
@@ -980,6 +981,13 @@ func (x *WorkflowTemplate) GetParameters() []*Parameter {
return nil
}
func (x *WorkflowTemplate) GetDescription() string {
if x != nil {
return x.Description
}
return ""
}
type GetWorkflowTemplateLabelsRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
@@ -1267,7 +1275,7 @@ var file_workflow_template_proto_rawDesc = []byte{
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@@ -1297,135 +1305,137 @@ var file_workflow_template_proto_rawDesc = []byte{
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}
var (

View File

@@ -297,6 +297,7 @@ type CreateWorkspaceBody struct {
WorkspaceTemplateVersion int64 `protobuf:"varint,2,opt,name=workspaceTemplateVersion,proto3" json:"workspaceTemplateVersion,omitempty"`
Parameters []*Parameter `protobuf:"bytes,3,rep,name=parameters,proto3" json:"parameters,omitempty"`
Labels []*KeyValue `protobuf:"bytes,4,rep,name=labels,proto3" json:"labels,omitempty"`
CaptureNode bool `protobuf:"varint,5,opt,name=captureNode,proto3" json:"captureNode,omitempty"`
}
func (x *CreateWorkspaceBody) Reset() {
@@ -359,6 +360,13 @@ func (x *CreateWorkspaceBody) GetLabels() []*KeyValue {
return nil
}
func (x *CreateWorkspaceBody) GetCaptureNode() bool {
if x != nil {
return x.CaptureNode
}
return false
}
type CreateWorkspaceRequest struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
@@ -1534,7 +1542,7 @@ var file_workspace_proto_rawDesc = []byte{
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@@ -1548,257 +1556,259 @@ var file_workspace_proto_rawDesc = []byte{
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0x69, 0x6f, 0x2f, 0x63, 0x6f, 0x72, 0x65, 0x2f, 0x61, 0x70, 0x69, 0x2f, 0x67, 0x65, 0x6e, 0x62,
0x06, 0x70, 0x72, 0x6f, 0x74, 0x6f, 0x33,
0x63, 0x6f, 0x6e, 0x74, 0x61, 0x69, 0x6e, 0x65, 0x72, 0x73, 0x2f, 0x7b, 0x63, 0x6f, 0x6e, 0x74,
0x61, 0x69, 0x6e, 0x65, 0x72, 0x4e, 0x61, 0x6d, 0x65, 0x7d, 0x2f, 0x6c, 0x6f, 0x67, 0x73, 0x30,
0x01, 0x12, 0x97, 0x01, 0x0a, 0x13, 0x4c, 0x69, 0x73, 0x74, 0x57, 0x6f, 0x72, 0x6b, 0x73, 0x70,
0x61, 0x63, 0x65, 0x73, 0x46, 0x69, 0x65, 0x6c, 0x64, 0x12, 0x1f, 0x2e, 0x61, 0x70, 0x69, 0x2e,
0x4c, 0x69, 0x73, 0x74, 0x57, 0x6f, 0x72, 0x6b, 0x73, 0x70, 0x61, 0x63, 0x65, 0x73, 0x46, 0x69,
0x65, 0x6c, 0x64, 0x52, 0x65, 0x71, 0x75, 0x65, 0x73, 0x74, 0x1a, 0x20, 0x2e, 0x61, 0x70, 0x69,
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0x6e, 0x62, 0x06, 0x70, 0x72, 0x6f, 0x74, 0x6f, 0x33,
}
var (

56
api/proto/files.proto Normal file
View File

@@ -0,0 +1,56 @@
syntax = "proto3";
package api;
option go_package = "github.com/onepanelio/core/api/gen";
import "google/api/annotations.proto";
service FileService {
rpc GetObjectDownloadPresignedURL (GetObjectPresignedUrlRequest) returns (GetPresignedUrlResponse) {
option (google.api.http) = {
get: "/apis/v1beta1/{namespace}/files/presigned-url/{key=**}"
};
}
rpc ListFiles (ListFilesRequest) returns (ListFilesResponse) {
option (google.api.http) = {
get: "/apis/v1beta1/{namespace}/files/list/{path=**}"
};
}
}
message File {
string path = 1;
string name = 2;
string extension = 3;
int64 size = 4;
string contentType = 5;
string lastModified = 6;
bool directory = 7;
}
message ListFilesRequest {
string namespace = 1;
string path = 2;
int32 page = 3;
int32 perPage = 4;
}
message ListFilesResponse {
int32 count = 1;
int32 totalCount = 2;
int32 page = 3;
int32 pages = 4;
repeated File files = 5;
string parentPath = 6;
}
message GetObjectPresignedUrlRequest {
string namespace = 1;
string key = 2;
}
message GetPresignedUrlResponse {
string url = 1;
int64 size = 2;
}

View File

@@ -0,0 +1,92 @@
syntax = "proto3";
package api;
option go_package = "github.com/onepanelio/core/api/gen";
import "google/api/annotations.proto";
import "google/protobuf/empty.proto";
service InferenceService {
rpc CreateInferenceService (CreateInferenceServiceRequest) returns (GetInferenceServiceResponse) {
option (google.api.http) = {
post: "/apis/v1beta1/{namespace}/inferenceservice"
body: "*"
};
}
rpc GetInferenceService(InferenceServiceIdentifier) returns (GetInferenceServiceResponse) {
option (google.api.http) = {
get: "/apis/v1beta1/{namespace}/inferenceservice/{name}"
};
}
rpc DeleteInferenceService (InferenceServiceIdentifier) returns (google.protobuf.Empty) {
option (google.api.http) = {
delete: "/apis/v1beta1/{namespace}/inferenceservice/{name}"
};
}
}
message InferenceServiceIdentifier {
string namespace = 1;
string name = 2;
}
message Env {
string name = 1;
string value = 2;
}
message Container {
string image = 1;
string name = 2;
repeated Env env = 3;
}
message InferenceServiceTransformer {
repeated Container containers = 1;
string minCpu = 2;
string minMemory = 3;
string maxCpu = 4;
string maxMemory = 5;
}
message InferenceServicePredictor {
string name = 1;
string runtimeVersion = 2;
string storageUri = 3;
string nodeSelector = 4;
string minCpu = 5;
string minMemory = 6;
string maxCpu = 7;
string maxMemory = 8;
}
message CreateInferenceServiceRequest {
string namespace = 1;
string name = 2;
string defaultTransformerImage = 3;
InferenceServicePredictor predictor = 4;
InferenceServiceTransformer transformer = 5;
}
message DeployModelResponse {
string status = 1;
}
message InferenceServiceCondition {
string lastTransitionTime = 1;
string status = 2;
string type = 3;
}
message GetInferenceServiceResponse {
bool ready = 1;
repeated InferenceServiceCondition conditions = 2;
string predictUrl = 3;
}
message InferenceServiceEndpoints {
string predict = 1;
}

View File

@@ -40,4 +40,5 @@ message CreateNamespaceRequest {
message Namespace {
string name = 1;
string sourceName = 2;
}

View File

@@ -17,6 +17,12 @@ service ServiceService {
get: "/apis/v1beta1/{namespace}/service"
};
}
rpc HasService(HasServiceRequest) returns (HasServiceResponse) {
option (google.api.http) = {
get: "/apis/v1beta/service/{name}"
};
}
}
message Service {
@@ -29,6 +35,14 @@ message GetServiceRequest {
string name = 2;
}
message HasServiceRequest {
string name = 1;
}
message HasServiceResponse {
bool hasService= 1;
}
message ListServicesRequest {
string namespace = 1;
int32 pageSize = 2;

View File

@@ -74,18 +74,6 @@ service WorkflowService {
};
}
rpc GetArtifact (GetArtifactRequest) returns (ArtifactResponse) {
option (google.api.http) = {
get: "/apis/v1beta1/{namespace}/workflow_executions/{uid}/artifacts/{key=**}"
};
}
rpc ListFiles (ListFilesRequest) returns (ListFilesResponse) {
option (google.api.http) = {
get: "/apis/v1beta1/{namespace}/workflow_executions/{uid}/files/{path=**}"
};
}
rpc AddWorkflowExecutionStatistics (AddWorkflowExecutionStatisticRequest) returns (google.protobuf.Empty) {
option (google.api.http) = {
post: "/apis/v1beta1/{namespace}/workflow_executions/{uid}/statistics"
@@ -235,31 +223,6 @@ message WorkflowExecution {
repeated Metric metrics = 12;
}
message ArtifactResponse {
bytes data = 1;
}
message File {
string path = 1;
string name = 2;
string extension = 3;
int64 size = 4;
string contentType = 5;
string lastModified = 6;
bool directory = 7;
}
message ListFilesRequest {
string namespace = 1;
string uid = 2;
string path = 3;
}
message ListFilesResponse {
repeated File files = 1;
string parentPath = 2;
}
message Statistics {
string workflowStatus = 1;
int64 workflowTemplateId = 2;

View File

@@ -166,6 +166,7 @@ message WorkflowTemplate {
WorkflowExecutionStatisticReport stats = 11;
CronWorkflowStatisticsReport cronStats = 12;
repeated Parameter parameters = 13;
string description = 14;
}
message GetWorkflowTemplateLabelsRequest {

View File

@@ -121,6 +121,7 @@ message CreateWorkspaceBody {
repeated Parameter parameters = 3;
repeated KeyValue labels = 4;
bool captureNode = 5;
}
message CreateWorkspaceRequest {

View File

@@ -52,7 +52,7 @@ See https://docs.onepanel.ai
` + "```" + `
# Download the binary
curl -sLO https://github.com/onepanelio/core/releases/download/v%s/opctl-linux-amd64
curl -sLO https://github.com/onepanelio/onepanel/releases/download/v%s/opctl-linux-amd64
# Make binary executable
chmod +x opctl-linux-amd64
@@ -68,7 +68,7 @@ opctl version
` + "```" + `
# Download the binary
curl -sLO https://github.com/onepanelio/core/releases/download/v%s/opctl-macos-amd64
curl -sLO https://github.com/onepanelio/onepanel/releases/download/v%s/opctl-macos-amd64
# Make binary executable
chmod +x opctl-macos-amd64
@@ -82,7 +82,7 @@ opctl version
## Windows
Download the [attached executable](https://github.com/onepanelio/core/releases/download/v%s/opctl-windows-amd64.exe), rename it to "opctl" and move it to a folder that is in your PATH environment variable.
Download the [attached executable](https://github.com/onepanelio/onepanel/releases/download/v%s/opctl-windows-amd64.exe), rename it to "opctl" and move it to a folder that is in your PATH environment variable.
`
var repositories = []string{

View File

@@ -0,0 +1,58 @@
package migration
import (
"database/sql"
"github.com/pressly/goose"
"path/filepath"
)
func initialize20210323175655() {
if _, ok := initializedMigrations[20210323175655]; !ok {
goose.AddMigration(Up20210323175655, Down20210323175655)
initializedMigrations[20210323175655] = true
}
}
// Up20210323175655 update workflows to support new PNS mode
func Up20210323175655(tx *sql.Tx) error {
// This code is executed when the migration is applied.
if err := updateWorkflowTemplateManifest(
filepath.Join("workflows", "pytorch-mnist-training", "20210323175655.yaml"),
pytorchWorkflowTemplateName,
map[string]string{
"created-by": "system",
"framework": "pytorch",
}); err != nil {
return err
}
return updateWorkflowTemplateManifest(
filepath.Join("workflows", "tensorflow-mnist-training", "20210323175655.yaml"),
tensorflowWorkflowTemplateName,
map[string]string{
"created-by": "system",
"framework": "tensorflow",
})
}
// Down20210323175655 reverts updating workflows to support PNS
func Down20210323175655(tx *sql.Tx) error {
// This code is executed when the migration is rolled back.
if err := updateWorkflowTemplateManifest(
filepath.Join("workflows", "tensorflow-mnist-training", "20210118175809.yaml"),
tensorflowWorkflowTemplateName,
map[string]string{
"created-by": "system",
"framework": "tensorflow",
}); err != nil {
return err
}
return updateWorkflowTemplateManifest(
filepath.Join("workflows", "pytorch-mnist-training", "20210118175809.yaml"),
pytorchWorkflowTemplateName,
map[string]string{
"created-by": "system",
"framework": "pytorch",
})
}

View File

@@ -0,0 +1,55 @@
package migration
import (
"database/sql"
"github.com/pressly/goose"
"path/filepath"
)
func initialize20210329171739() {
if _, ok := initializedMigrations[20210329171739]; !ok {
goose.AddMigration(Up20210329171739, Down20210329171739)
initializedMigrations[20210329171739] = true
}
}
// Up20210329171739 updates workspaces to use new images
func Up20210329171739(tx *sql.Tx) error {
// This code is executed when the migration is applied.
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "cvat", "20210323175655.yaml"),
cvatTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "jupyterlab", "20210323175655.yaml"),
jupyterLabTemplateName); err != nil {
return err
}
return updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vscode", "20210323175655.yaml"),
vscodeWorkspaceTemplateName)
}
// Down20210329171739 rolls back image updates for workspaces
func Down20210329171739(tx *sql.Tx) error {
// This code is executed when the migration is rolled back.
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "cvat", "20210224180017.yaml"),
cvatTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "jupyterlab", "20210224180017.yaml"),
jupyterLabTemplateName); err != nil {
return err
}
return updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vscode", "20210224180017.yaml"),
vscodeWorkspaceTemplateName)
}

View File

@@ -0,0 +1,109 @@
package migration
import (
"database/sql"
uid2 "github.com/onepanelio/core/pkg/util/uid"
"github.com/pressly/goose"
"path/filepath"
)
func initialize20210329194731() {
if _, ok := initializedMigrations[20210329194731]; !ok {
goose.AddMigration(Up20210329194731, Down20210329194731)
initializedMigrations[20210329194731] = true
}
}
// Up20210329194731 removes the hyperparameter-tuning workflow if there are no executions
func Up20210329194731(tx *sql.Tx) error {
// This code is executed when the migration is applied.
client, err := getClient()
if err != nil {
return err
}
defer client.DB.Close()
namespaces, err := client.ListOnepanelEnabledNamespaces()
if err != nil {
return err
}
uid, err := uid2.GenerateUID(hyperparameterTuningTemplateName, 30)
if err != nil {
return err
}
for _, namespace := range namespaces {
workflowTemplate, err := client.GetWorkflowTemplateRaw(namespace.Name, uid)
if err != nil {
return err
}
if workflowTemplate == nil {
continue
}
workflowExecutionsCount, err := client.CountWorkflowExecutionsForWorkflowTemplate(workflowTemplate.ID)
if err != nil {
return err
}
cronWorkflowsCount, err := client.CountCronWorkflows(namespace.Name, uid)
if err != nil {
return err
}
// Archive the template if we have no resources associated with it
if workflowExecutionsCount == 0 && cronWorkflowsCount == 0 {
if _, err := client.ArchiveWorkflowTemplate(namespace.Name, uid); err != nil {
return err
}
}
}
return nil
}
// Down20210329194731 returns the hyperparameter-tuning workflow if it was deleted
func Down20210329194731(tx *sql.Tx) error {
// This code is executed when the migration is rolled back.
client, err := getClient()
if err != nil {
return err
}
defer client.DB.Close()
namespaces, err := client.ListOnepanelEnabledNamespaces()
if err != nil {
return err
}
uid, err := uid2.GenerateUID("hyperparameter-tuning", 30)
if err != nil {
return err
}
for _, namespace := range namespaces {
workflowTemplate, err := client.GetWorkflowTemplateRaw(namespace.Name, uid)
if err != nil {
return err
}
if workflowTemplate == nil {
err := createWorkflowTemplate(
filepath.Join("workflows", "hyperparameter-tuning", "20210118175809.yaml"),
hyperparameterTuningTemplateName,
map[string]string{
"framework": "tensorflow",
"tuner": "TPE",
"created-by": "system",
},
)
if err != nil {
return err
}
}
}
return nil
}

View File

@@ -0,0 +1,31 @@
package migration
import (
"database/sql"
"github.com/pressly/goose"
"path/filepath"
)
var deepLearningDesktopTemplateName = "Deep Learning Desktop"
func initialize20210414165510() {
if _, ok := initializedMigrations[20210414165510]; !ok {
goose.AddMigration(Up20210414165510, Down20210414165510)
initializedMigrations[20210414165510] = true
}
}
// Up20210414165510 creates the Deep Learning Desktop Workspace Template
func Up20210414165510(tx *sql.Tx) error {
// This code is executed when the migration is applied.
return createWorkspaceTemplate(
filepath.Join("workspaces", "vnc", "20210414165510.yaml"),
deepLearningDesktopTemplateName,
"Deep learning desktop with VNC")
}
// Down20210414165510 removes the Deep Learning Desktop Workspace Template
func Down20210414165510(tx *sql.Tx) error {
// This code is executed when the migration is rolled back.
return archiveWorkspaceTemplate(deepLearningDesktopTemplateName)
}

View File

@@ -0,0 +1,66 @@
package migration
import (
"database/sql"
"github.com/pressly/goose"
"path/filepath"
)
func initialize20210719190719() {
if _, ok := initializedMigrations[20210719190719]; !ok {
goose.AddMigration(Up20210719190719, Down20210719190719)
initializedMigrations[20210719190719] = true
}
}
// Up20210719190719 updates the workspace templates to use new v1.0.0 of filesyncer
func Up20210719190719(tx *sql.Tx) error {
// This code is executed when the migration is applied.
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "cvat", "20210719190719.yaml"),
cvatTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "jupyterlab", "20210719190719.yaml"),
jupyterLabTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vnc", "20210719190719.yaml"),
deepLearningDesktopTemplateName); err != nil {
return err
}
return updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vscode", "20210719190719.yaml"),
vscodeWorkspaceTemplateName)
}
// Down20210719190719 rolls back the change to update filesyncer
func Down20210719190719(tx *sql.Tx) error {
// This code is executed when the migration is rolled back.
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "cvat", "20210323175655.yaml"),
cvatTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "jupyterlab", "20210323175655.yaml"),
jupyterLabTemplateName); err != nil {
return err
}
if err := updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vnc", "20210414165510.yaml"),
deepLearningDesktopTemplateName); err != nil {
return err
}
return updateWorkspaceTemplateManifest(
filepath.Join("workspaces", "vscode", "20210323175655.yaml"),
vscodeWorkspaceTemplateName)
}

View File

@@ -0,0 +1,28 @@
package migration
import (
"database/sql"
"github.com/pressly/goose"
"path/filepath"
)
func initialize20211028205201() {
if _, ok := initializedMigrations[20211028205201]; !ok {
goose.AddMigration(Up20211028205201, Down20211028205201)
initializedMigrations[20211028205201] = true
}
}
// Up20211028205201 creates the new cvat 1.6.0 workspace template
func Up20211028205201(tx *sql.Tx) error {
// This code is executed when the migration is applied.
return createWorkspaceTemplate(
filepath.Join("workspaces", "cvat_1_6_0", "20211028205201.yaml"),
"CVAT_1.6.0",
"Powerful and efficient Computer Vision Annotation Tool (CVAT)")
}
// Down20211028205201 archives the new cvat 1.6.0 workspace template
func Down20211028205201(tx *sql.Tx) error {
return archiveWorkspaceTemplate("CVAT_1.6.0")
}

View File

@@ -91,6 +91,12 @@ func Initialize() {
initialize20210129142057()
initialize20210129152427()
initialize20210224180017()
initialize20210323175655()
initialize20210329171739()
initialize20210329194731()
initialize20210414165510()
initialize20210719190719()
initialize20211028205201()
if err := client.DB.Close(); err != nil {
log.Printf("[error] closing db %v", err)

View File

@@ -1,14 +1,17 @@
package migration
import (
"fmt"
v1 "github.com/onepanelio/core/pkg"
"github.com/onepanelio/core/pkg/util/data"
uid2 "github.com/onepanelio/core/pkg/util/uid"
"path/filepath"
)
// updateWorkspaceTemplateManifest will update the workspace template given by {{templateName}} with the contents
// createWorkspaceTemplate will create the workspace template given by {{templateName}} with the contents
// given by {{filename}}
// It will do so for all namespaces.
func updateWorkspaceTemplateManifest(filename, templateName string) error {
func createWorkspaceTemplate(filename, templateName, description string) error {
client, err := getClient()
if err != nil {
return err
@@ -20,7 +23,101 @@ func updateWorkspaceTemplateManifest(filename, templateName string) error {
return err
}
newManifest, err := readDataFile(filename)
filename = filepath.Join("db", "yaml", filename)
manifestFile, err := data.ManifestFileFromFile(filename)
if err != nil {
return err
}
newManifest, err := manifestFile.SpecString()
if err != nil {
return err
}
uid, err := uid2.GenerateUID(templateName, 30)
if err != nil {
return err
}
for _, namespace := range namespaces {
workspaceTemplate := &v1.WorkspaceTemplate{
UID: uid,
Name: templateName,
Manifest: newManifest,
Description: description,
}
err = ReplaceArtifactRepositoryType(client, namespace, nil, workspaceTemplate)
if err != nil {
return err
}
if _, err := client.CreateWorkspaceTemplate(namespace.Name, workspaceTemplate); err != nil {
return err
}
}
return nil
}
func archiveWorkspaceTemplate(templateName string) error {
client, err := getClient()
if err != nil {
return err
}
defer client.DB.Close()
namespaces, err := client.ListOnepanelEnabledNamespaces()
if err != nil {
return err
}
uid, err := uid2.GenerateUID(templateName, 30)
if err != nil {
return err
}
for _, namespace := range namespaces {
hasRunning, err := client.WorkspaceTemplateHasRunningWorkspaces(namespace.Name, uid)
if err != nil {
return fmt.Errorf("Unable to get check running workspaces")
}
if hasRunning {
return fmt.Errorf("unable to archive workspace template. There are running workspaces that use it")
}
_, err = client.ArchiveWorkspaceTemplate(namespace.Name, uid)
if err != nil {
return err
}
}
return nil
}
// updateWorkspaceTemplateManifest will update the workspace template given by {{templateName}} with the contents
// given by {{filename}}
// It will do so for all namespaces.
func updateWorkspaceTemplateManifest(filename, templateName string) error {
client, err := getClient()
if err != nil {
return err
}
defer client.DB.Close()
filename = filepath.Join("db", "yaml", filename)
namespaces, err := client.ListOnepanelEnabledNamespaces()
if err != nil {
return err
}
manifest, err := data.ManifestFileFromFile(filename)
if err != nil {
return err
}
newManifest, err := manifest.SpecString()
if err != nil {
return err
}
@@ -63,7 +160,14 @@ func createWorkflowTemplate(filename, templateName string, labels map[string]str
return err
}
manifest, err := readDataFile(filename)
filename = filepath.Join("db", "yaml", filename)
manifestFile, err := data.ManifestFileFromFile(filename)
if err != nil {
return err
}
manifest, err := manifestFile.SpecString()
if err != nil {
return err
}
@@ -108,7 +212,14 @@ func updateWorkflowTemplateManifest(filename, templateName string, labels map[st
return err
}
newManifest, err := readDataFile(filename)
filename = filepath.Join("db", "yaml", filename)
manifestFile, err := data.ManifestFileFromFile(filename)
if err != nil {
return err
}
newManifest, err := manifestFile.SpecString()
if err != nil {
return err
}

View File

@@ -0,0 +1,7 @@
-- +goose Up
-- SQL in this section is executed when the migration is applied.
ALTER TABLE workflow_template_versions ADD COLUMN description TEXT DEFAULT '';
-- +goose Down
-- SQL in this section is executed when the migration is rolled back.
ALTER TABLE workflow_template_versions DROP COLUMN description;

View File

@@ -0,0 +1,7 @@
-- +goose Up
-- SQL in this section is executed when the migration is applied.
ALTER TABLE workspaces ADD COLUMN capture_node boolean;
UPDATE workspaces SET capture_node = false;
-- +goose Down
ALTER TABLE workspaces DROP COLUMN capture_node;

View File

@@ -1,183 +1,194 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/nni-hyperparameter-tuning/mnist/
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/templates
- name: revision
value: master
- name: config
displayName: Configuration
required: true
hint: NNI configuration
type: textarea.textarea
value: |-
authorName: Onepanel, Inc.
experimentName: MNIST TF v2.x
trialConcurrency: 1
maxExecDuration: 1h
maxTrialNum: 10
trainingServicePlatform: local
searchSpacePath: search_space.json
useAnnotation: false
tuner:
# gpuIndices: '0' # uncomment and update to the GPU indices to assign this tuner
builtinTunerName: TPE # choices: TPE, Random, Anneal, Evolution, BatchTuner, MetisTuner, GPTuner
classArgs:
optimize_mode: maximize # choices: maximize, minimize
trial:
command: python main.py --output /mnt/output
codeDir: .
# gpuNum: 1 # uncomment and update to number of GPUs
- name: search-space
displayName: Search space configuration
required: true
type: textarea.textarea
value: |-
{
"dropout_rate": { "_type": "uniform", "_value": [0.5, 0.9] },
"conv_size": { "_type": "choice", "_value": [2, 3, 5, 7] },
"hidden_size": { "_type": "choice", "_value": [124, 512, 1024] },
"batch_size": { "_type": "choice", "_value": [16, 32] },
"learning_rate": { "_type": "choice", "_value": [0.0001, 0.001, 0.01, 0.1] },
"epochs": { "_type": "choice", "_value": [10] }
}
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
required: true
metadata:
name: "Hyperparameter Tuning Example"
kind: Workflow
version: 20201225172926
action: create
source: "https://github.com/onepanelio/templates/blob/master/workflows/nni-hyperparameter-tuning/mnist/"
deprecated: true
labels:
framework: tensorflow
tuner: TPE
"created-by": system
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/templates
- name: revision
value: master
- name: config
displayName: Configuration
required: true
hint: NNI configuration
type: textarea.textarea
value: |-
authorName: Onepanel, Inc.
experimentName: MNIST TF v2.x
trialConcurrency: 1
maxExecDuration: 1h
maxTrialNum: 10
trainingServicePlatform: local
searchSpacePath: search_space.json
useAnnotation: false
tuner:
# gpuIndices: '0' # uncomment and update to the GPU indices to assign this tuner
builtinTunerName: TPE # choices: TPE, Random, Anneal, Evolution, BatchTuner, MetisTuner, GPTuner
classArgs:
optimize_mode: maximize # choices: maximize, minimize
trial:
command: python main.py --output /mnt/output
codeDir: .
# gpuNum: 1 # uncomment and update to number of GPUs
- name: search-space
displayName: Search space configuration
required: true
type: textarea.textarea
value: |-
{
"dropout_rate": { "_type": "uniform", "_value": [0.5, 0.9] },
"conv_size": { "_type": "choice", "_value": [2, 3, 5, 7] },
"hidden_size": { "_type": "choice", "_value": [124, 512, 1024] },
"batch_size": { "_type": "choice", "_value": [16, 32] },
"learning_rate": { "_type": "choice", "_value": [0.0001, 0.001, 0.01, 0.1] },
"epochs": { "_type": "choice", "_value": [10] }
}
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
required: true
volumeClaimTemplates:
- metadata:
name: hyperparamtuning-data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
- metadata:
name: hyperparamtuning-output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
volumeClaimTemplates:
- metadata:
name: hyperparamtuning-data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
- metadata:
name: hyperparamtuning-output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
templates:
- name: main
dag:
tasks:
- name: hyperparameter-tuning
template: hyperparameter-tuning
- name: workflow-metrics-writer
template: workflow-metrics-writer
dependencies: [hyperparameter-tuning]
arguments:
# Use sys-metrics artifact output from hyperparameter-tuning Task
artifacts:
- name: best-metrics
from: "{{tasks.hyperparameter-tuning.outputs.artifacts.sys-metrics}}"
- name: hyperparameter-tuning
inputs:
artifacts:
- name: src
git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
path: /mnt/data/src
- name: config
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
raw:
data: '{{workflow.parameters.config}}'
- name: search-space
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/search_space.json
raw:
data: '{{workflow.parameters.search-space}}'
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
container:
image: onepanel/dl:0.17.0
args:
- --config
- /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
workingDir: /mnt
volumeMounts:
- name: hyperparamtuning-data
mountPath: /mnt/data
- name: hyperparamtuning-output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: nni-web-ui
image: 'onepanel/nni-web-ui:0.17.0'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
ports:
- containerPort: 9000
name: nni
- name: tensorboard
image: 'tensorflow/tensorflow:2.3.0'
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
templates:
- name: main
dag:
tasks:
- name: hyperparameter-tuning
template: hyperparameter-tuning
- name: workflow-metrics-writer
template: workflow-metrics-writer
dependencies: [hyperparameter-tuning]
arguments:
# Use sys-metrics artifact output from hyperparameter-tuning Task
artifacts:
- name: best-metrics
from: "{{tasks.hyperparameter-tuning.outputs.artifacts.sys-metrics}}"
- name: hyperparameter-tuning
inputs:
artifacts:
- name: src
git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
path: /mnt/data/src
- name: config
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
raw:
data: '{{workflow.parameters.config}}'
- name: search-space
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/search_space.json
raw:
data: '{{workflow.parameters.search-space}}'
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
container:
image: onepanel/dl:0.17.0
args:
# Read logs from /mnt/output/tensorboard - /mnt/output is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
- name: workflow-metrics-writer
inputs:
artifacts:
- name: best-metrics
path: /tmp/sys-metrics.json
script:
image: onepanel/python-sdk:v0.16.0
command: [python, '-u']
source: |
import os
import json
- --config
- /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
workingDir: /mnt
volumeMounts:
- name: hyperparamtuning-data
mountPath: /mnt/data
- name: hyperparamtuning-output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: nni-web-ui
image: 'onepanel/nni-web-ui:0.17.0'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
ports:
- containerPort: 9000
name: nni
- name: tensorboard
image: 'tensorflow/tensorflow:2.3.0'
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output/tensorboard - /mnt/output is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
- name: workflow-metrics-writer
inputs:
artifacts:
- name: best-metrics
path: /tmp/sys-metrics.json
script:
image: onepanel/python-sdk:v0.16.0
command: [python, '-u']
source: |
import os
import json
import onepanel.core.api
from onepanel.core.api.models.metric import Metric
from onepanel.core.api.rest import ApiException
from onepanel.core.api.models import Parameter
import onepanel.core.api
from onepanel.core.api.models.metric import Metric
from onepanel.core.api.rest import ApiException
from onepanel.core.api.models import Parameter
# Load Task A metrics
with open('/tmp/sys-metrics.json') as f:
metrics = json.load(f)
# Load Task A metrics
with open('/tmp/sys-metrics.json') as f:
metrics = json.load(f)
with open('/var/run/secrets/kubernetes.io/serviceaccount/token') as f:
token = f.read()
with open('/var/run/secrets/kubernetes.io/serviceaccount/token') as f:
token = f.read()
# Configure API authorization
configuration = onepanel.core.api.Configuration(
host = os.getenv('ONEPANEL_API_URL'),
api_key = {
'authorization': token
}
)
configuration.api_key_prefix['authorization'] = 'Bearer'
# Configure API authorization
configuration = onepanel.core.api.Configuration(
host = os.getenv('ONEPANEL_API_URL'),
api_key = {
'authorization': token
}
)
configuration.api_key_prefix['authorization'] = 'Bearer'
# Call SDK method to save metrics
with onepanel.core.api.ApiClient(configuration) as api_client:
api_instance = onepanel.core.api.WorkflowServiceApi(api_client)
namespace = '{{workflow.namespace}}'
uid = '{{workflow.name}}'
body = onepanel.core.api.AddWorkflowExecutionsMetricsRequest()
body.metrics = metrics
try:
api_response = api_instance.add_workflow_execution_metrics(namespace, uid, body)
print('Metrics added.')
except ApiException as e:
print("Exception when calling WorkflowServiceApi->add_workflow_execution_metrics: %s\n" % e)
# Call SDK method to save metrics
with onepanel.core.api.ApiClient(configuration) as api_client:
api_instance = onepanel.core.api.WorkflowServiceApi(api_client)
namespace = '{{workflow.namespace}}'
uid = '{{workflow.name}}'
body = onepanel.core.api.AddWorkflowExecutionsMetricsRequest()
body.metrics = metrics
try:
api_response = api_instance.add_workflow_execution_metrics(namespace, uid, body)
print('Metrics added.')
except ApiException as e:
print("Exception when calling WorkflowServiceApi->add_workflow_execution_metrics: %s\n" % e)

View File

@@ -1,194 +1,205 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/nni-hyperparameter-tuning/mnist/
# Workflow Template example for hyperparameter tuning
# Documentation: https://docs.onepanel.ai/docs/reference/workflows/hyperparameter-tuning
#
# Only change the fields marked with [CHANGE]
entrypoint: main
arguments:
parameters:
metadata:
name: "Hyperparameter Tuning Example"
kind: Workflow
version: 20210118175809
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/nni-hyperparameter-tuning/mnist/"
deprecated: true
labels:
framework: tensorflow
tuner: TPE
"created-by": system
spec:
# Workflow Template example for hyperparameter tuning
# Documentation: https://docs.onepanel.ai/docs/reference/workflows/hyperparameter-tuning
#
# Only change the fields marked with [CHANGE]
entrypoint: main
arguments:
parameters:
# [CHANGE] Path to your training/model architecture code repository
# Change this value and revision value to your code repository and branch respectively
- name: source
value: https://github.com/onepanelio/templates
# [CHANGE] Path to your training/model architecture code repository
# Change this value and revision value to your code repository and branch respectively
- name: source
value: https://github.com/onepanelio/templates
# [CHANGE] Revision is the branch or tag that you want to use
# You can change this to any tag or branch name in your repository
- name: revision
value: v0.18.0
# [CHANGE] Revision is the branch or tag that you want to use
# You can change this to any tag or branch name in your repository
- name: revision
value: v0.18.0
# [CHANGE] Default configuration for the NNI tuner
# See https://docs.onepanel.ai/docs/reference/workflows/hyperparameter-tuning#understanding-the-configurations
- name: config
displayName: Configuration
required: true
hint: NNI configuration
type: textarea.textarea
value: |-
authorName: Onepanel, Inc.
experimentName: MNIST TF v2.x
trialConcurrency: 1
maxExecDuration: 1h
maxTrialNum: 10
trainingServicePlatform: local
searchSpacePath: search_space.json
useAnnotation: false
tuner:
# gpuIndices: '0' # uncomment and update to the GPU indices to assign this tuner
builtinTunerName: TPE # choices: TPE, Random, Anneal, Evolution, BatchTuner, MetisTuner, GPTuner
classArgs:
optimize_mode: maximize # choices: maximize, minimize
trial:
command: python main.py --output /mnt/output
codeDir: .
# gpuNum: 1 # uncomment and update to number of GPUs
# [CHANGE] Default configuration for the NNI tuner
# See https://docs.onepanel.ai/docs/reference/workflows/hyperparameter-tuning#understanding-the-configurations
- name: config
displayName: Configuration
required: true
hint: NNI configuration
type: textarea.textarea
value: |-
authorName: Onepanel, Inc.
experimentName: MNIST TF v2.x
trialConcurrency: 1
maxExecDuration: 1h
maxTrialNum: 10
trainingServicePlatform: local
searchSpacePath: search_space.json
useAnnotation: false
tuner:
# gpuIndices: '0' # uncomment and update to the GPU indices to assign this tuner
builtinTunerName: TPE # choices: TPE, Random, Anneal, Evolution, BatchTuner, MetisTuner, GPTuner
classArgs:
optimize_mode: maximize # choices: maximize, minimize
trial:
command: python main.py --output /mnt/output
codeDir: .
# gpuNum: 1 # uncomment and update to number of GPUs
# [CHANGE] Search space configuration
# Change according to your hyperparameters and ranges
- name: search-space
displayName: Search space configuration
required: true
type: textarea.textarea
value: |-
{
"dropout_rate": { "_type": "uniform", "_value": [0.5, 0.9] },
"conv_size": { "_type": "choice", "_value": [2, 3, 5, 7] },
"hidden_size": { "_type": "choice", "_value": [124, 512, 1024] },
"batch_size": { "_type": "choice", "_value": [16, 32] },
"learning_rate": { "_type": "choice", "_value": [0.0001, 0.001, 0.01, 0.1] },
"epochs": { "_type": "choice", "_value": [10] }
}
# [CHANGE] Search space configuration
# Change according to your hyperparameters and ranges
- name: search-space
displayName: Search space configuration
required: true
type: textarea.textarea
value: |-
{
"dropout_rate": { "_type": "uniform", "_value": [0.5, 0.9] },
"conv_size": { "_type": "choice", "_value": [2, 3, 5, 7] },
"hidden_size": { "_type": "choice", "_value": [124, 512, 1024] },
"batch_size": { "_type": "choice", "_value": [16, 32] },
"learning_rate": { "_type": "choice", "_value": [0.0001, 0.001, 0.01, 0.1] },
"epochs": { "_type": "choice", "_value": [10] }
}
# Node pool dropdown (Node group in EKS)
# You can add more of these if you have additional tasks that can run on different node pools
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
required: true
# Node pool dropdown (Node group in EKS)
# You can add more of these if you have additional tasks that can run on different node pools
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
required: true
templates:
- name: main
dag:
tasks:
- name: hyperparameter-tuning
template: hyperparameter-tuning
- name: metrics-writer
template: metrics-writer
dependencies: [hyperparameter-tuning]
arguments:
# Use sys-metrics artifact output from hyperparameter-tuning Task
# This writes the best metrics to the Workflow
artifacts:
- name: sys-metrics
from: "{{tasks.hyperparameter-tuning.outputs.artifacts.sys-metrics}}"
- name: hyperparameter-tuning
inputs:
artifacts:
- name: src
# Clone the above repository into '/mnt/data/src'
# See https://docs.onepanel.ai/docs/reference/workflows/artifacts#git for private repositories
git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
path: /mnt/data/src
# [CHANGE] Path where config.yaml will be generated or already exists
# Update the path below so that config.yaml is written to the same directory as your main.py file
# Note that your source code is cloned to /mnt/data/src
- name: config
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
raw:
data: '{{workflow.parameters.config}}'
# [CHANGE] Path where search_space.json will be generated or already exists
# Update the path below so that search_space.json is written to the same directory as your main.py file
# Note that your source code is cloned to /mnt/data/src
- name: search-space
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/search_space.json
raw:
data: '{{workflow.parameters.search-space}}'
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
container:
image: onepanel/dl:0.17.0
command:
- sh
- -c
args:
# [CHANGE] Update the config path below to point to config.yaml path as described above
# Note that you can `pip install` additional tools here if necessary
- |
python -u /opt/onepanel/nni/start.py \
--config /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
workingDir: /mnt
volumeMounts:
- name: hyperparamtuning-data
mountPath: /mnt/data
- name: hyperparamtuning-output
mountPath: /mnt/output
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: nni-web-ui
image: onepanel/nni-web-ui:0.17.0
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
ports:
- containerPort: 9000
name: nni
- name: tensorboard
templates:
- name: main
dag:
tasks:
- name: hyperparameter-tuning
template: hyperparameter-tuning
- name: metrics-writer
template: metrics-writer
dependencies: [hyperparameter-tuning]
arguments:
# Use sys-metrics artifact output from hyperparameter-tuning Task
# This writes the best metrics to the Workflow
artifacts:
- name: sys-metrics
from: "{{tasks.hyperparameter-tuning.outputs.artifacts.sys-metrics}}"
- name: hyperparameter-tuning
inputs:
artifacts:
- name: src
# Clone the above repository into '/mnt/data/src'
# See https://docs.onepanel.ai/docs/reference/workflows/artifacts#git for private repositories
git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
path: /mnt/data/src
# [CHANGE] Path where config.yaml will be generated or already exists
# Update the path below so that config.yaml is written to the same directory as your main.py file
# Note that your source code is cloned to /mnt/data/src
- name: config
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
raw:
data: '{{workflow.parameters.config}}'
# [CHANGE] Path where search_space.json will be generated or already exists
# Update the path below so that search_space.json is written to the same directory as your main.py file
# Note that your source code is cloned to /mnt/data/src
- name: search-space
path: /mnt/data/src/workflows/hyperparameter-tuning/mnist/search_space.json
raw:
data: '{{workflow.parameters.search-space}}'
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
container:
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
- -c
args:
# Read logs from /mnt/output/tensorboard - /mnt/output is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
# Use the metrics-writer tasks to write best metrics to Workflow
- name: metrics-writer
inputs:
artifacts:
- name: sys-metrics
path: /tmp/sys-metrics.json
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src
container:
image: onepanel/python-sdk:v0.16.0
command:
- python
- -u
args:
- /mnt/src/tasks/metrics-writer/main.py
- --from_file=/tmp/sys-metrics.json
# [CHANGE] Update the config path below to point to config.yaml path as described above
# Note that you can `pip install` additional tools here if necessary
- |
python -u /opt/onepanel/nni/start.py \
--config /mnt/data/src/workflows/hyperparameter-tuning/mnist/config.yaml
workingDir: /mnt
volumeMounts:
- name: hyperparamtuning-data
mountPath: /mnt/data
- name: hyperparamtuning-output
mountPath: /mnt/output
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: nni-web-ui
image: onepanel/nni-web-ui:0.17.0
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
ports:
- containerPort: 9000
name: nni
- name: tensorboard
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output/tensorboard - /mnt/output is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
# Use the metrics-writer tasks to write best metrics to Workflow
- name: metrics-writer
inputs:
artifacts:
- name: sys-metrics
path: /tmp/sys-metrics.json
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src
container:
image: onepanel/python-sdk:v0.16.0
command:
- python
- -u
args:
- /mnt/src/tasks/metrics-writer/main.py
- --from_file=/tmp/sys-metrics.json
# [CHANGE] Volumes that will mount to /mnt/data (annotated data) and /mnt/output (models, checkpoints, logs)
# Update this depending on your annotation data, model, checkpoint, logs, etc. sizes
# Example values: 250Mi, 500Gi, 1Ti
volumeClaimTemplates:
- metadata:
name: hyperparamtuning-data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
- metadata:
name: hyperparamtuning-output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
# [CHANGE] Volumes that will mount to /mnt/data (annotated data) and /mnt/output (models, checkpoints, logs)
# Update this depending on your annotation data, model, checkpoint, logs, etc. sizes
# Example values: 250Mi, 500Gi, 1Ti
volumeClaimTemplates:
- metadata:
name: hyperparamtuning-data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi
- metadata:
name: hyperparamtuning-output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi

View File

@@ -0,0 +1,197 @@
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20200812104328
action: create
labels:
"used-by": "cvat"
"created-by": "system"
spec:
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
- name: sys-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: sys-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: sys-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: sys-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: extras
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters."
- name: dump-format
type: select.select
value: cvat_coco
displayName: CVAT dump format
visibility: public
options:
- name: 'MS COCO'
value: 'cvat_coco'
- name: 'TF Detection API'
value: 'cvat_tfrecord'
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
name: main
- container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.extras}}" \
--ref_model_path="{{workflow.parameters.sys-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.sys-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.sys-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.sys-output-path}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -0,0 +1,191 @@
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20200824095513
action: update
labels:
"used-by": "cvat"
"created-by": "system"
spec:
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
name: main
- container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,190 +1,199 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20201115145814
action: update
labels:
"used-by": "cvat"
"created-by": "system"
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,192 +1,201 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20201208155115
action: update
labels:
"used-by": "cvat"
"created-by": "system"
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/Mask_RCNN.git
displayName: Model source code
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes (i.e in CVAT taks) + 1 for background
value: '81'
visibility: private
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
visibility: public
name: sys-node-pool
value: Standard_D4s_v3
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: "no-boto"
name: src
path: /mnt/src
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,149 +1,158 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/maskrcnn-training/
arguments:
parameters:
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20201221195937
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/maskrcnn-training/"
labels:
"used-by": "cvat"
"created-by": "system"
spec:
arguments:
parameters:
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
hint: Path to annotated data in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: internal
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: internal
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes + 1 for background. In CVAT, this parameter will be pre-populated.
value: '11'
visibility: internal
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes + 1 for background. In CVAT, this parameter will be pre-populated.
value: '11'
visibility: internal
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "See <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#maskrcnn-hyperparameters' target='_blank'>documentation</a> for more information on parameters."
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage-1-epochs=1 # Epochs for network heads
stage-2-epochs=2 # Epochs for finetune layers
stage-3-epochs=3 # Epochs for all layers
hint: "See <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#maskrcnn-hyperparameters' target='_blank'>documentation</a> for more information on parameters."
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: public
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
visibility: public
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
visibility: public
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
required: true
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
visibility: public
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
required: true
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
name: main
- container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [ sh, -c ]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: [ "tensorboard --logdir /mnt/output/" ]
ports:
- containerPort: 6006
name: tensorboard
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: 'https://github.com/onepanelio/Mask_RCNN.git'
revision: 'no-boto'
name: src
path: /mnt/src
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
name: main
- container:
args:
- |
apt-get update \
&& apt-get install -y git wget libglib2.0-0 libsm6 libxext6 libxrender-dev \
&& pip install -r requirements.txt \
&& pip install boto3 pyyaml google-cloud-storage \
&& git clone https://github.com/waleedka/coco \
&& cd coco/PythonAPI \
&& python setup.py build_ext install \
&& rm -rf build \
&& cd ../../ \
&& wget https://github.com/matterport/Mask_RCNN/releases/download/v2.0/mask_rcnn_coco.h5 \
&& python setup.py install && ls \
&& python samples/coco/cvat.py train --dataset=/mnt/data/datasets \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
&& cd /mnt/src/ \
&& python prepare_dataset.py /mnt/data/datasets/annotations/instances_default.json
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [ sh, -c ]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: [ "tensorboard --logdir /mnt/output/" ]
ports:
- containerPort: 6006
name: tensorboard
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: 'https://github.com/onepanelio/Mask_RCNN.git'
revision: 'no-boto'
name: src
path: /mnt/src
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,208 +1,217 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/maskrcnn-training/
arguments:
parameters:
- name: cvat-annotation-path
value: 'artifacts/{{workflow.namespace}}/annotations/'
hint: Path to annotated data (COCO format) in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
metadata:
name: "MaskRCNN Training"
kind: Workflow
version: 20210118175809
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/maskrcnn-training/"
labels:
"used-by": "cvat"
"created-by": "system"
spec:
arguments:
parameters:
- name: cvat-annotation-path
value: 'artifacts/{{workflow.namespace}}/annotations/'
hint: Path to annotated data (COCO format) in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
- name: val-split
value: 10
displayName: Validation split size
type: input.number
visibility: public
hint: Enter validation set size in percentage of full dataset. (0 - 100)
- name: val-split
value: 10
displayName: Validation split size
type: input.number
visibility: public
hint: Enter validation set size in percentage of full dataset. (0 - 100)
- name: num-augmentation-cycles
value: 1
displayName: Number of augmentation cycles
type: input.number
visibility: public
hint: Number of augmentation cycles, zero means no data augmentation
- name: num-augmentation-cycles
value: 1
displayName: Number of augmentation cycles
type: input.number
visibility: public
hint: Number of augmentation cycles, zero means no data augmentation
- name: preprocessing-parameters
value: |-
RandomBrightnessContrast:
p: 0.2
GaussianBlur:
p: 0.3
GaussNoise:
p: 0.4
HorizontalFlip:
p: 0.5
VerticalFlip:
p: 0.3
displayName: Preprocessing parameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://albumentations.ai/docs/api_reference/augmentations/transforms/" target="_blank">documentation</a> for more information on parameters.'
- name: preprocessing-parameters
value: |-
RandomBrightnessContrast:
p: 0.2
GaussianBlur:
p: 0.3
GaussNoise:
p: 0.4
HorizontalFlip:
p: 0.5
VerticalFlip:
p: 0.3
displayName: Preprocessing parameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://albumentations.ai/docs/api_reference/augmentations/transforms/" target="_blank">documentation</a> for more information on parameters.'
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes. In CVAT, this parameter will be pre-populated.
value: '10'
visibility: internal
- name: cvat-num-classes
displayName: Number of classes
hint: Number of classes. In CVAT, this parameter will be pre-populated.
value: '10'
visibility: internal
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage_1_epochs: 1 # Epochs for network heads
stage_2_epochs: 1 # Epochs for finetune layers
stage_3_epochs: 1 # Epochs for all layers
num_steps: 1000 # Num steps per epoch
hint: 'See <a href="https://docs.onepanel.ai/docs/reference/workflows/training#maskrcnn-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: hyperparameters
displayName: Hyperparameters
visibility: public
type: textarea.textarea
value: |-
stage_1_epochs: 1 # Epochs for network heads
stage_2_epochs: 1 # Epochs for finetune layers
stage_3_epochs: 1 # Epochs for all layers
num_steps: 1000 # Num steps per epoch
hint: 'See <a href="https://docs.onepanel.ai/docs/reference/workflows/training#maskrcnn-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: private
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: private
- name: cvat-finetune-checkpoint
value: ''
hint: Path to the last fine-tune checkpoint for this model in default object storage. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Path to the last fine-tune checkpoint for this model in default object storage. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
visibility: public
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
required: true
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
visibility: public
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
required: true
entrypoint: main
templates:
- dag:
tasks:
- name: preprocessing
template: preprocessing
- name: train-model
template: tensorflow
dependencies: [preprocessing]
arguments:
artifacts:
- name: data
from: "{{tasks.preprocessing.outputs.artifacts.processed-data}}"
name: main
- container:
args:
- |
pip install pycocotools scikit-image==0.16.2 && \
cd /mnt/src/train/workflows/maskrcnn-training && \
python -u main.py train --dataset=/mnt/data/datasets/train_set/ \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--val_dataset=/mnt/data/datasets/eval_set/ \
--use_validation=True
command:
- sh
- -c
image: onepanel/dl:0.17.0
volumeMounts:
- mountPath: /mnt/data
name: processed-data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
sidecars:
- name: tensorboard
image: onepanel/dl:0.17.0
command: [ sh, -c ]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: [ "tensorboard --logdir /mnt/output/tensorboard" ]
ports:
- containerPort: 6006
name: tensorboard
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
- container:
args:
- |
pip install pycocotools && \
cd /mnt/src/preprocessing/workflows/albumentations-preprocessing && \
python -u main.py \
--data_aug_params="{{workflow.parameters.preprocessing-parameters}}" \
--val_split={{workflow.parameters.val-split}} \
--aug_steps={{workflow.parameters.num-augmentation-cycles}}
command:
- sh
- -c
image: onepanel/dl:0.17.0
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: processed-data
workingDir: /mnt/src
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/preprocessing
name: preprocessing
outputs:
artifacts:
- name: processed-data
optional: true
path: /mnt/output
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: processed-data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
entrypoint: main
templates:
- dag:
tasks:
- name: preprocessing
template: preprocessing
- name: train-model
template: tensorflow
dependencies: [preprocessing]
arguments:
artifacts:
- name: data
from: "{{tasks.preprocessing.outputs.artifacts.processed-data}}"
name: main
- container:
args:
- |
pip install pycocotools scikit-image==0.16.2 && \
cd /mnt/src/train/workflows/maskrcnn-training && \
python -u main.py train --dataset=/mnt/data/datasets/train_set/ \
--model=workflow_maskrcnn \
--extras="{{workflow.parameters.hyperparameters}}" \
--ref_model_path="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--val_dataset=/mnt/data/datasets/eval_set/ \
--use_validation=True
command:
- sh
- -c
image: onepanel/dl:v0.20.0
volumeMounts:
- mountPath: /mnt/data
name: processed-data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
sidecars:
- name: tensorboard
image: onepanel/dl:v0.20.0
command: [ sh, -c ]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: [ "tensorboard --logdir /mnt/output/tensorboard" ]
ports:
- containerPort: 6006
name: tensorboard
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
- container:
args:
- |
pip install pycocotools && \
cd /mnt/src/preprocessing/workflows/albumentations-preprocessing && \
python -u main.py \
--data_aug_params="{{workflow.parameters.preprocessing-parameters}}" \
--val_split={{workflow.parameters.val-split}} \
--aug_steps={{workflow.parameters.num-augmentation-cycles}}
command:
- sh
- -c
image: onepanel/dl:v0.20.0
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: processed-data
workingDir: /mnt/src
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/preprocessing
name: preprocessing
outputs:
artifacts:
- name: processed-data
optional: true
path: /mnt/output
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: processed-data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,75 +1,84 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/pytorch-examples.git
- name: command
value: "python mnist/main.py --epochs=1"
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
templates:
- name: main
dag:
tasks:
- name: train-model
template: pytorch
# Uncomment section below to send metrics to Slack
# - name: notify-in-slack
# dependencies: [train-model]
# template: slack-notify-success
# arguments:
# parameters:
# - name: status
# value: "{{tasks.train-model.status}}"
# artifacts:
# - name: metrics
# from: "{{tasks.train-model.outputs.artifacts.sys-metrics}}"
- name: pytorch
inputs:
artifacts:
- name: src
path: /mnt/src
git:
repo: "{{workflow.parameters.source}}"
outputs:
artifacts:
- name: model
path: /mnt/output
optional: true
archive:
none: {}
container:
image: pytorch/pytorch:latest
command: [sh,-c]
args: ["{{workflow.parameters.command}}"]
workingDir: /mnt/src
volumeMounts:
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
- name: slack-notify-success
container:
image: technosophos/slack-notify
command: [sh,-c]
args: ['SLACK_USERNAME=Worker SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify']
inputs:
parameters:
- name: status
artifacts:
- name: metrics
path: /tmp/metrics.json
optional: true
metadata:
name: "PyTorch Training"
kind: Workflow
version: 20200605090509
action: create
labels:
"created-by": "system"
framework: pytorch
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/pytorch-examples.git
- name: command
value: "python mnist/main.py --epochs=1"
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
templates:
- name: main
dag:
tasks:
- name: train-model
template: pytorch
# Uncomment section below to send metrics to Slack
# - name: notify-in-slack
# dependencies: [train-model]
# template: slack-notify-success
# arguments:
# parameters:
# - name: status
# value: "{{tasks.train-model.status}}"
# artifacts:
# - name: metrics
# from: "{{tasks.train-model.outputs.artifacts.sys-metrics}}"
- name: pytorch
inputs:
artifacts:
- name: src
path: /mnt/src
git:
repo: "{{workflow.parameters.source}}"
outputs:
artifacts:
- name: model
path: /mnt/output
optional: true
archive:
none: {}
container:
image: pytorch/pytorch:latest
command: [sh,-c]
args: ["{{workflow.parameters.command}}"]
workingDir: /mnt/src
volumeMounts:
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
- name: slack-notify-success
container:
image: technosophos/slack-notify
command: [sh,-c]
args: ['SLACK_USERNAME=Worker SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify']
inputs:
parameters:
- name: status
artifacts:
- name: metrics
path: /tmp/metrics.json
optional: true

View File

@@ -1,207 +1,216 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/pytorch-mnist-training/
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- python
- '-u'
source: |
import json
import torch
import torch.nn as nn
import torch.nn.functional as F
import torch.optim as optim
from torchvision import datasets, transforms
from torch.optim.lr_scheduler import StepLR
from torch.utils.tensorboard import SummaryWriter
class Net(nn.Module):
def __init__(self):
super(Net, self).__init__()
self.conv1 = nn.Conv2d(1, 32, 3, 1)
self.conv2 = nn.Conv2d(32, 64, 3, 1)
self.dropout1 = nn.Dropout(0.25)
self.dropout2 = nn.Dropout(0.5)
self.fc1 = nn.Linear(9216, 128)
self.fc2 = nn.Linear(128, 10)
def forward(self, x):
x = self.conv1(x)
x = F.relu(x)
x = self.conv2(x)
x = F.relu(x)
x = F.max_pool2d(x, 2)
x = self.dropout1(x)
x = torch.flatten(x, 1)
x = self.fc1(x)
x = F.relu(x)
x = self.dropout2(x)
x = self.fc2(x)
output = F.log_softmax(x, dim=1)
return output
def train(model, device, train_loader, optimizer, epoch, batch_size, writer):
model.train()
for batch_idx, (data, target) in enumerate(train_loader):
data, target = data.to(device), target.to(device)
optimizer.zero_grad()
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
if batch_idx % 10 == 0:
print('Train Epoch: {} [{}/{} ({:.0f}%)]\tLoss: {:.6f}'.format(
epoch, batch_idx * len(data), len(train_loader.dataset),
100. * batch_idx / len(train_loader), loss.item()))
writer.add_scalar('training loss', loss.item(), epoch)
def test(model, device, test_loader, epoch, writer):
model.eval()
test_loss = 0
correct = 0
with torch.no_grad():
for data, target in test_loader:
data, target = data.to(device), target.to(device)
output = model(data)
test_loss += F.nll_loss(output, target, reduction='sum').item() # sum up batch loss
pred = output.argmax(dim=1, keepdim=True) # get the index of the max log-probability
correct += pred.eq(target.view_as(pred)).sum().item()
loss = test_loss / len(test_loader.dataset)
accuracy = correct / len(test_loader.dataset)
print('\nTest set: Average loss: {}, Accuracy: {}\n'.format(
loss, accuracy))
# Store metrics for this task
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
def main(params):
writer = SummaryWriter(log_dir='/mnt/output/tensorboard')
use_cuda = torch.cuda.is_available()
torch.manual_seed(params['seed'])
device = torch.device('cuda' if use_cuda else 'cpu')
train_kwargs = {'batch_size': params['batch_size']}
test_kwargs = {'batch_size': params['test_batch_size']}
if use_cuda:
cuda_kwargs = {'num_workers': 1,
'pin_memory': True,
'shuffle': True}
train_kwargs.update(cuda_kwargs)
test_kwargs.update(cuda_kwargs)
transform=transforms.Compose([
transforms.ToTensor(),
transforms.Normalize((0.1307,), (0.3081,))
])
dataset1 = datasets.MNIST('/mnt/data', train=True, download=True,
transform=transform)
dataset2 = datasets.MNIST('/mnt/data', train=False,
transform=transform)
train_loader = torch.utils.data.DataLoader(dataset1, **train_kwargs)
test_loader = torch.utils.data.DataLoader(dataset2, **test_kwargs)
model = Net().to(device)
optimizer = optim.Adadelta(model.parameters(), lr=params['lr'])
scheduler = StepLR(optimizer, step_size=1, gamma=params['gamma'])
for epoch in range(1, params['epochs'] + 1):
train(model, device, train_loader, optimizer, epoch, params['batch_size'], writer)
test(model, device, test_loader, epoch, writer)
scheduler.step()
# Save model
torch.save(model.state_dict(), '/mnt/output/model.pt')
writer.close()
if __name__ == '__main__':
params = {
'seed': 1,
'batch_size': 64,
'test_batch_size': 1000,
'epochs': {{workflow.parameters.epochs}},
'lr': 0.001,
'gamma': 0.7,
}
main(params)
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted for saving datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
metadata:
name: "PyTorch Training"
kind: Workflow
version: 20201221194344
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/pytorch-mnist-training/"
labels:
"created-by": "system"
framework: pytorch
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- python
- '-u'
source: |
import json
import torch
import torch.nn as nn
import torch.nn.functional as F
import torch.optim as optim
from torchvision import datasets, transforms
from torch.optim.lr_scheduler import StepLR
from torch.utils.tensorboard import SummaryWriter
class Net(nn.Module):
def __init__(self):
super(Net, self).__init__()
self.conv1 = nn.Conv2d(1, 32, 3, 1)
self.conv2 = nn.Conv2d(32, 64, 3, 1)
self.dropout1 = nn.Dropout(0.25)
self.dropout2 = nn.Dropout(0.5)
self.fc1 = nn.Linear(9216, 128)
self.fc2 = nn.Linear(128, 10)
def forward(self, x):
x = self.conv1(x)
x = F.relu(x)
x = self.conv2(x)
x = F.relu(x)
x = F.max_pool2d(x, 2)
x = self.dropout1(x)
x = torch.flatten(x, 1)
x = self.fc1(x)
x = F.relu(x)
x = self.dropout2(x)
x = self.fc2(x)
output = F.log_softmax(x, dim=1)
return output
def train(model, device, train_loader, optimizer, epoch, batch_size, writer):
model.train()
for batch_idx, (data, target) in enumerate(train_loader):
data, target = data.to(device), target.to(device)
optimizer.zero_grad()
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
if batch_idx % 10 == 0:
print('Train Epoch: {} [{}/{} ({:.0f}%)]\tLoss: {:.6f}'.format(
epoch, batch_idx * len(data), len(train_loader.dataset),
100. * batch_idx / len(train_loader), loss.item()))
writer.add_scalar('training loss', loss.item(), epoch)
def test(model, device, test_loader, epoch, writer):
model.eval()
test_loss = 0
correct = 0
with torch.no_grad():
for data, target in test_loader:
data, target = data.to(device), target.to(device)
output = model(data)
test_loss += F.nll_loss(output, target, reduction='sum').item() # sum up batch loss
pred = output.argmax(dim=1, keepdim=True) # get the index of the max log-probability
correct += pred.eq(target.view_as(pred)).sum().item()
loss = test_loss / len(test_loader.dataset)
accuracy = correct / len(test_loader.dataset)
print('\nTest set: Average loss: {}, Accuracy: {}\n'.format(
loss, accuracy))
# Store metrics for this task
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
def main(params):
writer = SummaryWriter(log_dir='/mnt/output/tensorboard')
use_cuda = torch.cuda.is_available()
torch.manual_seed(params['seed'])
device = torch.device('cuda' if use_cuda else 'cpu')
train_kwargs = {'batch_size': params['batch_size']}
test_kwargs = {'batch_size': params['test_batch_size']}
if use_cuda:
cuda_kwargs = {'num_workers': 1,
'pin_memory': True,
'shuffle': True}
train_kwargs.update(cuda_kwargs)
test_kwargs.update(cuda_kwargs)
transform=transforms.Compose([
transforms.ToTensor(),
transforms.Normalize((0.1307,), (0.3081,))
])
dataset1 = datasets.MNIST('/mnt/data', train=True, download=True,
transform=transform)
dataset2 = datasets.MNIST('/mnt/data', train=False,
transform=transform)
train_loader = torch.utils.data.DataLoader(dataset1, **train_kwargs)
test_loader = torch.utils.data.DataLoader(dataset2, **test_kwargs)
model = Net().to(device)
optimizer = optim.Adadelta(model.parameters(), lr=params['lr'])
scheduler = StepLR(optimizer, step_size=1, gamma=params['gamma'])
for epoch in range(1, params['epochs'] + 1):
train(model, device, train_loader, optimizer, epoch, params['batch_size'], writer)
test(model, device, test_loader, epoch, writer)
scheduler.step()
# Save model
torch.save(model.state_dict(), '/mnt/output/model.pt')
writer.close()
if __name__ == '__main__':
params = {
'seed': 1,
'batch_size': 64,
'test_batch_size': 1000,
'epochs': {{workflow.parameters.epochs}},
'lr': 0.001,
'gamma': 0.7,
}
main(params)
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted for saving datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -1,207 +1,216 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/pytorch-mnist-training/
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- python
- '-u'
source: |
import json
import torch
import torch.nn as nn
import torch.nn.functional as F
import torch.optim as optim
from torchvision import datasets, transforms
from torch.optim.lr_scheduler import StepLR
from torch.utils.tensorboard import SummaryWriter
class Net(nn.Module):
def __init__(self):
super(Net, self).__init__()
self.conv1 = nn.Conv2d(1, 32, 3, 1)
self.conv2 = nn.Conv2d(32, 64, 3, 1)
self.dropout1 = nn.Dropout(0.25)
self.dropout2 = nn.Dropout(0.5)
self.fc1 = nn.Linear(9216, 128)
self.fc2 = nn.Linear(128, 10)
def forward(self, x):
x = self.conv1(x)
x = F.relu(x)
x = self.conv2(x)
x = F.relu(x)
x = F.max_pool2d(x, 2)
x = self.dropout1(x)
x = torch.flatten(x, 1)
x = self.fc1(x)
x = F.relu(x)
x = self.dropout2(x)
x = self.fc2(x)
output = F.log_softmax(x, dim=1)
return output
def train(model, device, train_loader, optimizer, epoch, batch_size, writer):
model.train()
for batch_idx, (data, target) in enumerate(train_loader):
data, target = data.to(device), target.to(device)
optimizer.zero_grad()
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
if batch_idx % 10 == 0:
print('Train Epoch: {} [{}/{} ({:.0f}%)]\tLoss: {:.6f}'.format(
epoch, batch_idx * len(data), len(train_loader.dataset),
100. * batch_idx / len(train_loader), loss.item()))
writer.add_scalar('training loss', loss.item(), epoch)
def test(model, device, test_loader, epoch, writer):
model.eval()
test_loss = 0
correct = 0
with torch.no_grad():
for data, target in test_loader:
data, target = data.to(device), target.to(device)
output = model(data)
test_loss += F.nll_loss(output, target, reduction='sum').item() # sum up batch loss
pred = output.argmax(dim=1, keepdim=True) # get the index of the max log-probability
correct += pred.eq(target.view_as(pred)).sum().item()
loss = test_loss / len(test_loader.dataset)
accuracy = correct / len(test_loader.dataset)
print('\nTest set: Average loss: {}, Accuracy: {}\n'.format(
loss, accuracy))
# Store metrics for this task
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
def main(params):
writer = SummaryWriter(log_dir='/mnt/output/tensorboard')
use_cuda = torch.cuda.is_available()
torch.manual_seed(params['seed'])
device = torch.device('cuda' if use_cuda else 'cpu')
train_kwargs = {'batch_size': params['batch_size']}
test_kwargs = {'batch_size': params['test_batch_size']}
if use_cuda:
cuda_kwargs = {'num_workers': 1,
'pin_memory': True,
'shuffle': True}
train_kwargs.update(cuda_kwargs)
test_kwargs.update(cuda_kwargs)
transform=transforms.Compose([
transforms.ToTensor(),
transforms.Normalize((0.1307,), (0.3081,))
])
dataset1 = datasets.MNIST('/mnt/data', train=True, download=True,
transform=transform)
dataset2 = datasets.MNIST('/mnt/data', train=False,
transform=transform)
train_loader = torch.utils.data.DataLoader(dataset1, **train_kwargs)
test_loader = torch.utils.data.DataLoader(dataset2, **test_kwargs)
model = Net().to(device)
optimizer = optim.Adadelta(model.parameters(), lr=params['lr'])
scheduler = StepLR(optimizer, step_size=1, gamma=params['gamma'])
for epoch in range(1, params['epochs'] + 1):
train(model, device, train_loader, optimizer, epoch, params['batch_size'], writer)
test(model, device, test_loader, epoch, writer)
scheduler.step()
# Save model
torch.save(model.state_dict(), '/mnt/output/model.pt')
writer.close()
if __name__ == '__main__':
params = {
'seed': 1,
'batch_size': 64,
'test_batch_size': 1000,
'epochs': {{workflow.parameters.epochs}},
'lr': 0.001,
'gamma': 0.7,
}
main(params)
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted for saving datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
metadata:
name: "PyTorch Training"
kind: Workflow
version: 20210118175809
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/pytorch-mnist-training/"
labels:
"created-by": "system"
framework: pytorch
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- python
- '-u'
source: |
import json
import torch
import torch.nn as nn
import torch.nn.functional as F
import torch.optim as optim
from torchvision import datasets, transforms
from torch.optim.lr_scheduler import StepLR
from torch.utils.tensorboard import SummaryWriter
class Net(nn.Module):
def __init__(self):
super(Net, self).__init__()
self.conv1 = nn.Conv2d(1, 32, 3, 1)
self.conv2 = nn.Conv2d(32, 64, 3, 1)
self.dropout1 = nn.Dropout(0.25)
self.dropout2 = nn.Dropout(0.5)
self.fc1 = nn.Linear(9216, 128)
self.fc2 = nn.Linear(128, 10)
def forward(self, x):
x = self.conv1(x)
x = F.relu(x)
x = self.conv2(x)
x = F.relu(x)
x = F.max_pool2d(x, 2)
x = self.dropout1(x)
x = torch.flatten(x, 1)
x = self.fc1(x)
x = F.relu(x)
x = self.dropout2(x)
x = self.fc2(x)
output = F.log_softmax(x, dim=1)
return output
def train(model, device, train_loader, optimizer, epoch, batch_size, writer):
model.train()
for batch_idx, (data, target) in enumerate(train_loader):
data, target = data.to(device), target.to(device)
optimizer.zero_grad()
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
if batch_idx % 10 == 0:
print('Train Epoch: {} [{}/{} ({:.0f}%)]\tLoss: {:.6f}'.format(
epoch, batch_idx * len(data), len(train_loader.dataset),
100. * batch_idx / len(train_loader), loss.item()))
writer.add_scalar('training loss', loss.item(), epoch)
def test(model, device, test_loader, epoch, writer):
model.eval()
test_loss = 0
correct = 0
with torch.no_grad():
for data, target in test_loader:
data, target = data.to(device), target.to(device)
output = model(data)
test_loss += F.nll_loss(output, target, reduction='sum').item() # sum up batch loss
pred = output.argmax(dim=1, keepdim=True) # get the index of the max log-probability
correct += pred.eq(target.view_as(pred)).sum().item()
loss = test_loss / len(test_loader.dataset)
accuracy = correct / len(test_loader.dataset)
print('\nTest set: Average loss: {}, Accuracy: {}\n'.format(
loss, accuracy))
# Store metrics for this task
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
def main(params):
writer = SummaryWriter(log_dir='/mnt/output/tensorboard')
use_cuda = torch.cuda.is_available()
torch.manual_seed(params['seed'])
device = torch.device('cuda' if use_cuda else 'cpu')
train_kwargs = {'batch_size': params['batch_size']}
test_kwargs = {'batch_size': params['test_batch_size']}
if use_cuda:
cuda_kwargs = {'num_workers': 1,
'pin_memory': True,
'shuffle': True}
train_kwargs.update(cuda_kwargs)
test_kwargs.update(cuda_kwargs)
transform=transforms.Compose([
transforms.ToTensor(),
transforms.Normalize((0.1307,), (0.3081,))
])
dataset1 = datasets.MNIST('/mnt/data', train=True, download=True,
transform=transform)
dataset2 = datasets.MNIST('/mnt/data', train=False,
transform=transform)
train_loader = torch.utils.data.DataLoader(dataset1, **train_kwargs)
test_loader = torch.utils.data.DataLoader(dataset2, **test_kwargs)
model = Net().to(device)
optimizer = optim.Adadelta(model.parameters(), lr=params['lr'])
scheduler = StepLR(optimizer, step_size=1, gamma=params['gamma'])
for epoch in range(1, params['epochs'] + 1):
train(model, device, train_loader, optimizer, epoch, params['batch_size'], writer)
test(model, device, test_loader, epoch, writer)
scheduler.step()
# Save model
torch.save(model.state_dict(), '/mnt/output/model.pt')
writer.close()
if __name__ == '__main__':
params = {
'seed': 1,
'batch_size': 64,
'test_batch_size': 1000,
'epochs': {{workflow.parameters.epochs}},
'lr': 0.001,
'gamma': 0.7,
}
main(params)
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted for saving datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -0,0 +1,216 @@
metadata:
name: "PyTorch Training"
kind: Workflow
version: 20210323175655
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/pytorch-mnist-training/"
labels:
"created-by": "system"
framework: pytorch
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:v0.20.0
command:
- python
- '-u'
source: |
import json
import torch
import torch.nn as nn
import torch.nn.functional as F
import torch.optim as optim
from torchvision import datasets, transforms
from torch.optim.lr_scheduler import StepLR
from torch.utils.tensorboard import SummaryWriter
class Net(nn.Module):
def __init__(self):
super(Net, self).__init__()
self.conv1 = nn.Conv2d(1, 32, 3, 1)
self.conv2 = nn.Conv2d(32, 64, 3, 1)
self.dropout1 = nn.Dropout(0.25)
self.dropout2 = nn.Dropout(0.5)
self.fc1 = nn.Linear(9216, 128)
self.fc2 = nn.Linear(128, 10)
def forward(self, x):
x = self.conv1(x)
x = F.relu(x)
x = self.conv2(x)
x = F.relu(x)
x = F.max_pool2d(x, 2)
x = self.dropout1(x)
x = torch.flatten(x, 1)
x = self.fc1(x)
x = F.relu(x)
x = self.dropout2(x)
x = self.fc2(x)
output = F.log_softmax(x, dim=1)
return output
def train(model, device, train_loader, optimizer, epoch, batch_size, writer):
model.train()
for batch_idx, (data, target) in enumerate(train_loader):
data, target = data.to(device), target.to(device)
optimizer.zero_grad()
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
if batch_idx % 10 == 0:
print('Train Epoch: {} [{}/{} ({:.0f}%)]\tLoss: {:.6f}'.format(
epoch, batch_idx * len(data), len(train_loader.dataset),
100. * batch_idx / len(train_loader), loss.item()))
writer.add_scalar('training loss', loss.item(), epoch)
def test(model, device, test_loader, epoch, writer):
model.eval()
test_loss = 0
correct = 0
with torch.no_grad():
for data, target in test_loader:
data, target = data.to(device), target.to(device)
output = model(data)
test_loss += F.nll_loss(output, target, reduction='sum').item() # sum up batch loss
pred = output.argmax(dim=1, keepdim=True) # get the index of the max log-probability
correct += pred.eq(target.view_as(pred)).sum().item()
loss = test_loss / len(test_loader.dataset)
accuracy = correct / len(test_loader.dataset)
print('\nTest set: Average loss: {}, Accuracy: {}\n'.format(
loss, accuracy))
# Store metrics for this task
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/mnt/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
def main(params):
writer = SummaryWriter(log_dir='/mnt/output/tensorboard')
use_cuda = torch.cuda.is_available()
torch.manual_seed(params['seed'])
device = torch.device('cuda' if use_cuda else 'cpu')
train_kwargs = {'batch_size': params['batch_size']}
test_kwargs = {'batch_size': params['test_batch_size']}
if use_cuda:
cuda_kwargs = {'num_workers': 1,
'pin_memory': True,
'shuffle': True}
train_kwargs.update(cuda_kwargs)
test_kwargs.update(cuda_kwargs)
transform=transforms.Compose([
transforms.ToTensor(),
transforms.Normalize((0.1307,), (0.3081,))
])
dataset1 = datasets.MNIST('/mnt/data', train=True, download=True,
transform=transform)
dataset2 = datasets.MNIST('/mnt/data', train=False,
transform=transform)
train_loader = torch.utils.data.DataLoader(dataset1, **train_kwargs)
test_loader = torch.utils.data.DataLoader(dataset2, **test_kwargs)
model = Net().to(device)
optimizer = optim.Adadelta(model.parameters(), lr=params['lr'])
scheduler = StepLR(optimizer, step_size=1, gamma=params['gamma'])
for epoch in range(1, params['epochs'] + 1):
train(model, device, train_loader, optimizer, epoch, params['batch_size'], writer)
test(model, device, test_loader, epoch, writer)
scheduler.step()
# Save model
torch.save(model.state_dict(), '/mnt/output/model.pt')
writer.close()
if __name__ == '__main__':
params = {
'seed': 1,
'batch_size': 64,
'test_batch_size': 1000,
'epochs': {{workflow.parameters.epochs}},
'lr': 0.001,
'gamma': 0.7,
}
main(params)
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted for saving datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: onepanel/dl:v0.20.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -1,76 +1,85 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/template.yaml
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/tensorflow-examples.git
- name: command
value: "python mnist/main.py --epochs=5"
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
templates:
- name: main
dag:
tasks:
- name: train-model
template: pytorch
# Uncomment section below to send metrics to Slack
# - name: notify-in-slack
# dependencies: [train-model]
# template: slack-notify-success
# arguments:
# parameters:
# - name: status
# value: "{{tasks.train-model.status}}"
# artifacts:
# - name: metrics
# from: "{{tasks.train-model.outputs.artifacts.sys-metrics}}"
- name: pytorch
inputs:
artifacts:
- name: src
path: /mnt/src
git:
repo: "{{workflow.parameters.source}}"
outputs:
artifacts:
- name: model
path: /mnt/output
optional: true
archive:
none: {}
container:
image: tensorflow/tensorflow:latest
command: [sh,-c]
args: ["{{workflow.parameters.command}}"]
workingDir: /mnt/src
volumeMounts:
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
- name: slack-notify-success
container:
image: technosophos/slack-notify
command: [sh,-c]
args: ['SLACK_USERNAME=Worker SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify']
inputs:
parameters:
- name: status
artifacts:
- name: metrics
path: /tmp/metrics.json
optional: true
metadata:
name: "TensorFlow Training"
kind: Workflow
version: 20200605090535
action: create
source: "https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/template.yaml"
labels:
"created-by": "system"
framework: tensorflow
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/onepanelio/tensorflow-examples.git
- name: command
value: "python mnist/main.py --epochs=5"
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
templates:
- name: main
dag:
tasks:
- name: train-model
template: pytorch
# Uncomment section below to send metrics to Slack
# - name: notify-in-slack
# dependencies: [train-model]
# template: slack-notify-success
# arguments:
# parameters:
# - name: status
# value: "{{tasks.train-model.status}}"
# artifacts:
# - name: metrics
# from: "{{tasks.train-model.outputs.artifacts.sys-metrics}}"
- name: pytorch
inputs:
artifacts:
- name: src
path: /mnt/src
git:
repo: "{{workflow.parameters.source}}"
outputs:
artifacts:
- name: model
path: /mnt/output
optional: true
archive:
none: {}
container:
image: tensorflow/tensorflow:latest
command: [sh,-c]
args: ["{{workflow.parameters.command}}"]
workingDir: /mnt/src
volumeMounts:
- name: data
mountPath: /mnt/data
- name: output
mountPath: /mnt/output
- name: slack-notify-success
container:
image: technosophos/slack-notify
command: [sh,-c]
args: ['SLACK_USERNAME=Worker SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify']
inputs:
parameters:
- name: status
artifacts:
- name: metrics
path: /tmp/metrics.json
optional: true

View File

@@ -1,71 +1,80 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/template.yaml
arguments:
parameters:
- name: epochs
value: '10'
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: tf-dense
- name: tf-dense
script:
image: tensorflow/tensorflow:2.3.0
command:
- python
- '-u'
source: |
import tensorflow as tf
import datetime
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
def create_model():
return tf.keras.models.Sequential([
tf.keras.layers.Flatten(input_shape=(28, 28)),
tf.keras.layers.Dense(512, activation='relu'),
tf.keras.layers.Dropout(0.2),
tf.keras.layers.Dense(10, activation='softmax')
])
model = create_model()
model.compile(optimizer='adam',
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write logs to /mnt/output
log_dir = "/mnt/output/logs/" + datetime.datetime.now().strftime("%Y%m%d-%H%M%S")
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
history = model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
volumeMounts:
# TensorBoard sidecar will automatically mount this volume
- name: output
mountPath: /mnt/output
sidecars:
- name: tensorboard
image: 'tensorflow/tensorflow:2.3.0'
metadata:
name: "TensorFlow Training"
kind: Workflow
version: 20201209124226
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/template.yaml"
labels:
"created-by": "system"
framework: tensorflow
spec:
arguments:
parameters:
- name: epochs
value: '10'
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: tf-dense
- name: tf-dense
script:
image: tensorflow/tensorflow:2.3.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision a volume that can be shared between main container and TensorBoard side car
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- python
- '-u'
source: |
import tensorflow as tf
import datetime
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
def create_model():
return tf.keras.models.Sequential([
tf.keras.layers.Flatten(input_shape=(28, 28)),
tf.keras.layers.Dense(512, activation='relu'),
tf.keras.layers.Dropout(0.2),
tf.keras.layers.Dense(10, activation='softmax')
])
model = create_model()
model.compile(optimizer='adam',
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write logs to /mnt/output
log_dir = "/mnt/output/logs/" + datetime.datetime.now().strftime("%Y%m%d-%H%M%S")
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
history = model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
volumeMounts:
# TensorBoard sidecar will automatically mount this volume
- name: output
mountPath: /mnt/output
sidecars:
- name: tensorboard
image: 'tensorflow/tensorflow:2.3.0'
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision a volume that can be shared between main container and TensorBoard side car
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -1,118 +1,127 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- python
- '-u'
source: |
import json
import tensorflow as tf
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
x_train = x_train[..., tf.newaxis]
x_test = x_test[..., tf.newaxis]
model = tf.keras.Sequential([
tf.keras.layers.Conv2D(filters=32, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Conv2D(filters=64, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Flatten(),
tf.keras.layers.Dense(units=124, activation='relu'),
tf.keras.layers.Dropout(rate=0.75),
tf.keras.layers.Dense(units=10, activation='softmax')
])
model.compile(optimizer=tf.keras.optimizers.Adam(lr=0.001),
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write TensorBoard logs to /mnt/output
log_dir = '/mnt/output/tensorboard/'
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
# Store metrics for this task
loss, accuracy = model.evaluate(x_test, y_test)
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
# Save model
model.save('/mnt/output/model.h5')
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted to support Keras datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /home/root/.keras/datasets
- name: output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
metadata:
name: "TensorFlow Training"
kind: Workflow
version: 20201223062947
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/"
labels:
"created-by": "system"
framework: tensorflow
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- python
- '-u'
source: |
import json
import tensorflow as tf
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
x_train = x_train[..., tf.newaxis]
x_test = x_test[..., tf.newaxis]
model = tf.keras.Sequential([
tf.keras.layers.Conv2D(filters=32, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Conv2D(filters=64, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Flatten(),
tf.keras.layers.Dense(units=124, activation='relu'),
tf.keras.layers.Dropout(rate=0.75),
tf.keras.layers.Dense(units=10, activation='softmax')
])
model.compile(optimizer=tf.keras.optimizers.Adam(lr=0.001),
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write TensorBoard logs to /mnt/output
log_dir = '/mnt/output/tensorboard/'
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
# Store metrics for this task
loss, accuracy = model.evaluate(x_test, y_test)
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
# Save model
model.save('/mnt/output/model.h5')
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted to support Keras datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /home/root/.keras/datasets
- name: output
mountPath: /mnt/output
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -1,118 +1,127 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- python
- '-u'
source: |
import json
import tensorflow as tf
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
x_train = x_train[..., tf.newaxis]
x_test = x_test[..., tf.newaxis]
model = tf.keras.Sequential([
tf.keras.layers.Conv2D(filters=32, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Conv2D(filters=64, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Flatten(),
tf.keras.layers.Dense(units=124, activation='relu'),
tf.keras.layers.Dropout(rate=0.75),
tf.keras.layers.Dense(units=10, activation='softmax')
])
model.compile(optimizer=tf.keras.optimizers.Adam(lr=0.001),
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write TensorBoard logs to /mnt/output
log_dir = '/mnt/output/tensorboard/'
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
# Store metrics for this task
loss, accuracy = model.evaluate(x_test, y_test)
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
# Save model
model.save('/mnt/output/model.h5')
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted to support Keras datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /home/root/.keras/datasets
- name: output
mountPath: /mnt/output
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
metadata:
name: "TensorFlow Training"
kind: Workflow
version: 20210118175809
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/"
labels:
"created-by": "system"
framework: tensorflow
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- python
- '-u'
source: |
import json
import tensorflow as tf
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
x_train = x_train[..., tf.newaxis]
x_test = x_test[..., tf.newaxis]
model = tf.keras.Sequential([
tf.keras.layers.Conv2D(filters=32, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Conv2D(filters=64, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Flatten(),
tf.keras.layers.Dense(units=124, activation='relu'),
tf.keras.layers.Dropout(rate=0.75),
tf.keras.layers.Dense(units=10, activation='softmax')
])
model.compile(optimizer=tf.keras.optimizers.Adam(lr=0.001),
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write TensorBoard logs to /mnt/output
log_dir = '/mnt/output/tensorboard/'
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
# Store metrics for this task
loss, accuracy = model.evaluate(x_test, y_test)
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
# Save model
model.save('/mnt/output/model.h5')
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted to support Keras datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /home/root/.keras/datasets
- name: output
mountPath: /mnt/output
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: onepanel/dl:0.17.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -0,0 +1,127 @@
metadata:
name: "TensorFlow Training"
kind: Workflow
version: 20210323175655
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tensorflow-mnist-training/"
labels:
"created-by": "system"
framework: tensorflow
spec:
arguments:
parameters:
- name: epochs
value: '10'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- name: main
dag:
tasks:
- name: train-model
template: train-model
- name: train-model
# Indicates that we want to push files in /mnt/output to object storage
outputs:
artifacts:
- name: output
path: /mnt/output
optional: true
script:
image: onepanel/dl:v0.20.0
command:
- python
- '-u'
source: |
import json
import tensorflow as tf
mnist = tf.keras.datasets.mnist
(x_train, y_train),(x_test, y_test) = mnist.load_data()
x_train, x_test = x_train / 255.0, x_test / 255.0
x_train = x_train[..., tf.newaxis]
x_test = x_test[..., tf.newaxis]
model = tf.keras.Sequential([
tf.keras.layers.Conv2D(filters=32, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Conv2D(filters=64, kernel_size=5, activation='relu'),
tf.keras.layers.MaxPool2D(pool_size=2),
tf.keras.layers.Flatten(),
tf.keras.layers.Dense(units=124, activation='relu'),
tf.keras.layers.Dropout(rate=0.75),
tf.keras.layers.Dense(units=10, activation='softmax')
])
model.compile(optimizer=tf.keras.optimizers.Adam(lr=0.001),
loss='sparse_categorical_crossentropy',
metrics=['accuracy'])
# Write TensorBoard logs to /mnt/output
log_dir = '/mnt/output/tensorboard/'
tensorboard_callback = tf.keras.callbacks.TensorBoard(log_dir=log_dir, histogram_freq=1)
model.fit(x=x_train,
y=y_train,
epochs={{workflow.parameters.epochs}},
validation_data=(x_test, y_test),
callbacks=[tensorboard_callback])
# Store metrics for this task
loss, accuracy = model.evaluate(x_test, y_test)
metrics = [
{'name': 'accuracy', 'value': accuracy},
{'name': 'loss', 'value': loss}
]
with open('/mnt/tmp/sys-metrics.json', 'w') as f:
json.dump(metrics, f)
# Save model
model.save('/mnt/output/model.h5')
volumeMounts:
# TensorBoard sidecar will automatically mount these volumes
# The `data` volume is mounted to support Keras datasets
# The `output` volume is mounted to save model output and share TensorBoard logs
- name: data
mountPath: /home/root/.keras/datasets
- name: output
mountPath: /mnt/output
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: onepanel/dl:v0.20.0
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/tensorboard
ports:
- containerPort: 6006
name: tensorboard
volumeClaimTemplates:
# Provision volumes for storing data and output
- metadata:
name: data
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi
- metadata:
name: output
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 2Gi

View File

@@ -0,0 +1,221 @@
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20200812104328
action: create
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: sys-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
- name: sys-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: ref-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: extras
value: |-
epochs=1000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: sys-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: sys-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:` + "`pwd`:`pwd`/slim" + ` && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.extras}}" \
--model="{{workflow.parameters.ref-model}}" \
--num_classes="{{workflow.parameters.sys-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.sys-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.sys-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.sys-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.sys-output-path}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -0,0 +1,222 @@
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20200824101019
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:` + "`pwd`:`pwd`" + `/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,221 +1,231 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20201115134934
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,221 +1,231 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20201130130433
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
{{.ArtifactRepositoryType}}:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
tty: true
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
"{{.ArtifactRepositoryType}}":
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,223 +1,233 @@
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20201208155115
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
entrypoint: main
arguments:
parameters:
- name: source
value: https://github.com/tensorflow/models.git
displayName: Model source code
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: trainingsource
value: https://github.com/onepanelio/cvat-training.git
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: revision
value: v1.13.0
type: hidden
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data in default object storage (i.e S3). In CVAT, this parameter will be pre-populated.
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: private
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: "Please refer to our <a href='https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model#arguments-optional' target='_blank'>documentation</a> for more information on parameters. Number of classes will be automatically populated if you had 'sys-num-classes' parameter in a workflow."
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: cvat-num-classes
value: '81'
hint: Number of classes
displayName: Number of classes
visibility: private
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
{{.ArtifactRepositoryType}}:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
{{.ArtifactRepositoryType}}:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.select
name: sys-node-pool
value: Standard_D4s_v3
visibility: public
required: true
options:
- name: 'CPU: 2, RAM: 8GB'
value: Standard_D2s_v3
- name: 'CPU: 4, RAM: 16GB'
value: Standard_D4s_v3
- name: 'GPU: 1xK80, CPU: 6, RAM: 56GB'
value: Standard_NC6
- name: dump-format
value: cvat_tfrecord
visibility: public
templates:
- name: main
dag:
tasks:
- name: train-model
template: tensorflow
# Uncomment the lines below if you want to send Slack notifications
# - arguments:
# artifacts:
# - from: '{{tasks.train-model.outputs.artifacts.sys-metrics}}'
# name: metrics
# parameters:
# - name: status
# value: '{{tasks.train-model.status}}'
# dependencies:
# - train-model
# name: notify-in-slack
# template: slack-notify-success
- name: tensorflow
container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 jupyter matplotlib numpy scipy boto3 pycocotools pyyaml google-cloud-storage && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
cd /mnt/src/train && \
python convert_workflow.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
sidecars:
- name: tensorboard
image: tensorflow/tensorflow:2.3.0
command: [sh, -c]
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args: ["tensorboard --logdir /mnt/output/"]
ports:
- containerPort: 6006
name: tensorboard
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
"{{.ArtifactRepositoryType}}":
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: '{{workflow.parameters.source}}'
revision: '{{workflow.parameters.revision}}'
name: src
path: /mnt/src/tf
- git:
repo: '{{workflow.parameters.trainingsource}}'
revision: 'optional-artifacts'
name: tsrc
path: /mnt/src/train
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
"{{.ArtifactRepositoryType}}":
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
# Uncomment the lines below if you want to send Slack notifications
#- container:
# args:
# - SLACK_USERNAME=Onepanel SLACK_TITLE="{{workflow.name}} {{inputs.parameters.status}}"
# SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd
# SLACK_MESSAGE=$(cat /tmp/metrics.json)} ./slack-notify
# command:
# - sh
# - -c
# image: technosophos/slack-notify
# inputs:
# artifacts:
# - name: metrics
# optional: true
# path: /tmp/metrics.json
# parameters:
# - name: status
# name: slack-notify-success
volumeClaimTemplates:
- metadata:
creationTimestamp: null
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
creationTimestamp: null
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,165 +1,174 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/
arguments:
parameters:
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data (TFRecord format) in default object storage. In CVAT, this parameter will be pre-populated.
visibility: internal
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20201223202929
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
arguments:
parameters:
- name: cvat-annotation-path
value: annotation-dump/sample_dataset
displayName: Dataset path
hint: Path to annotated data (TFRecord format) in default object storage. In CVAT, this parameter will be pre-populated.
visibility: internal
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: internal
- name: cvat-output-path
value: workflow-data/output/sample_output
hint: Path to store output artifacts in default object storage (i.e s3). In CVAT, this parameter will be pre-populated.
displayName: Workflow output path
visibility: internal
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model/#tfod-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: hyperparameters
value: |-
num-steps=10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_annotation_model/#tfod-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Select the last fine-tune checkpoint for this model. It may take up to 5 minutes for a recent checkpoint show here. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-num-classes
value: '10'
hint: Number of classes. In CVAT, this parameter will be pre-populated.
displayName: Number of classes
visibility: internal
- name: cvat-num-classes
value: '10'
hint: Number of classes. In CVAT, this parameter will be pre-populated.
displayName: Number of classes
visibility: internal
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: dump-format
value: cvat_tfrecord
visibility: public
- name: dump-format
value: cvat_tfrecord
visibility: public
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 matplotlib numpy scipy pycocotools pyyaml test-generator && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
mkdir -p /mnt/src/protoc && \
wget -P /mnt/src/protoc https://github.com/protocolbuffers/protobuf/releases/download/v3.10.1/protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/protoc/ && \
unzip protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/tf/research/ && \
/mnt/src/protoc/bin/protoc object_detection/protos/*.proto --python_out=. && \
cd /mnt/src/train/workflows/tf-object-detection-training && \
python main.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/tensorflow/models.git
revision: v1.13.0
name: src
path: /mnt/src/tf
- git:
repo: https://github.com/onepanelio/templates.git
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
entrypoint: main
templates:
- dag:
tasks:
- name: train-model
template: tensorflow
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install pillow lxml Cython contextlib2 matplotlib numpy scipy pycocotools pyyaml test-generator && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
mkdir -p /mnt/src/protoc && \
wget -P /mnt/src/protoc https://github.com/protocolbuffers/protobuf/releases/download/v3.10.1/protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/protoc/ && \
unzip protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/tf/research/ && \
/mnt/src/protoc/bin/protoc object_detection/protos/*.proto --python_out=. && \
cd /mnt/src/train/workflows/tf-object-detection-training && \
python main.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint={{workflow.parameters.cvat-finetune-checkpoint}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
beta.kubernetes.io/instance-type: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-annotation-path}}'
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/tensorflow/models.git
revision: v1.13.0
name: src
path: /mnt/src/tf
- git:
repo: https://github.com/onepanelio/templates.git
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
s3:
key: '{{workflow.namespace}}/{{workflow.parameters.cvat-output-path}}/{{workflow.name}}'
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -1,260 +1,269 @@
# source: https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/
arguments:
parameters:
- name: cvat-annotation-path
value: 'artifacts/{{workflow.namespace}}/annotations/'
hint: Path to annotated data (COCO format) in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
metadata:
name: "TF Object Detection Training"
kind: Workflow
version: 20210118175809
action: update
source: "https://github.com/onepanelio/templates/blob/master/workflows/tf-object-detection-training/"
labels:
"created-by": "system"
"used-by": "cvat"
spec:
arguments:
parameters:
- name: cvat-annotation-path
value: 'artifacts/{{workflow.namespace}}/annotations/'
hint: Path to annotated data (COCO format) in default object storage. In CVAT, this parameter will be pre-populated.
displayName: Dataset path
visibility: internal
- name: val-split
value: 10
displayName: Validation split size
type: input.number
visibility: public
hint: Enter validation set size in percentage of full dataset. (0 - 100)
- name: val-split
value: 10
displayName: Validation split size
type: input.number
visibility: public
hint: Enter validation set size in percentage of full dataset. (0 - 100)
- name: num-augmentation-cycles
value: 1
displayName: Number of augmentation cycles
type: input.number
visibility: public
hint: Number of augmentation cycles, zero means no data augmentation
- name: num-augmentation-cycles
value: 1
displayName: Number of augmentation cycles
type: input.number
visibility: public
hint: Number of augmentation cycles, zero means no data augmentation
- name: preprocessing-parameters
value: |-
RandomBrightnessContrast:
p: 0.2
GaussianBlur:
p: 0.3
GaussNoise:
p: 0.4
HorizontalFlip:
p: 0.5
VerticalFlip:
p: 0.3
displayName: Preprocessing parameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://albumentations.ai/docs/api_reference/augmentations/transforms/" target="_blank">documentation</a> for more information on parameters.'
- name: preprocessing-parameters
value: |-
RandomBrightnessContrast:
p: 0.2
GaussianBlur:
p: 0.3
GaussNoise:
p: 0.4
HorizontalFlip:
p: 0.5
VerticalFlip:
p: 0.3
displayName: Preprocessing parameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://albumentations.ai/docs/api_reference/augmentations/transforms/" target="_blank">documentation</a> for more information on parameters.'
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-model
value: frcnn-res50-coco
displayName: Model
hint: TF Detection API's model to use for training.
type: select.select
visibility: public
options:
- name: 'Faster RCNN-ResNet 101-COCO'
value: frcnn-res101-coco
- name: 'Faster RCNN-ResNet 101-Low Proposal-COCO'
value: frcnn-res101-low
- name: 'Faster RCNN-ResNet 50-COCO'
value: frcnn-res50-coco
- name: 'Faster RCNN-NAS-COCO'
value: frcnn-nas-coco
- name: 'SSD MobileNet V1-COCO'
value: ssd-mobilenet-v1-coco2
- name: 'SSD MobileNet V2-COCO'
value: ssd-mobilenet-v2-coco
- name: 'SSDLite MobileNet-COCO'
value: ssdlite-mobilenet-coco
- name: cvat-num-classes
value: '10'
hint: Number of classes. In CVAT, this parameter will be pre-populated.
displayName: Number of classes
visibility: internal
- name: cvat-num-classes
value: '10'
hint: Number of classes. In CVAT, this parameter will be pre-populated.
displayName: Number of classes
visibility: internal
- name: hyperparameters
value: |-
num_steps: 10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://docs.onepanel.ai/docs/reference/workflows/training#tfod-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: hyperparameters
value: |-
num_steps: 10000
displayName: Hyperparameters
visibility: public
type: textarea.textarea
hint: 'See <a href="https://docs.onepanel.ai/docs/reference/workflows/training#tfod-hyperparameters" target="_blank">documentation</a> for more information on parameters.'
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: private
- name: dump-format
value: cvat_coco
displayName: CVAT dump format
visibility: private
- name: cvat-finetune-checkpoint
value: ''
hint: Path to the last fine-tune checkpoint for this model in default object storage. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: cvat-finetune-checkpoint
value: ''
hint: Path to the last fine-tune checkpoint for this model in default object storage. Leave empty if this is the first time you're training this model.
displayName: Checkpoint path
visibility: public
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- name: tf-image
value: tensorflow/tensorflow:1.13.1-py3
type: select.select
displayName: Select TensorFlow image
visibility: public
hint: Select the GPU image if you are running on a GPU node pool
options:
- name: 'TensorFlow 1.13.1 CPU Image'
value: 'tensorflow/tensorflow:1.13.1-py3'
- name: 'TensorFlow 1.13.1 GPU Image'
value: 'tensorflow/tensorflow:1.13.1-gpu-py3'
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: {{.DefaultNodePoolOption}}
visibility: public
required: true
- displayName: Node pool
hint: Name of node pool or group to run this workflow task
type: select.nodepool
name: sys-node-pool
value: "{{.DefaultNodePoolOption}}"
visibility: public
required: true
entrypoint: main
templates:
- dag:
tasks:
- name: preprocessing
template: preprocessing
- name: train-model
template: tensorflow
dependencies: [preprocessing]
arguments:
artifacts:
- name: data
from: "{{tasks.preprocessing.outputs.artifacts.processed-data}}"
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install --upgrade pip && \
pip install pillow lxml Cython contextlib2 matplotlib numpy scipy pycocotools pyyaml test-generator && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
mkdir -p /mnt/src/protoc && \
wget -P /mnt/src/protoc https://github.com/protocolbuffers/protobuf/releases/download/v3.10.1/protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/protoc/ && \
unzip protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/tf/research/ && \
/mnt/src/protoc/bin/protoc object_detection/protos/*.proto --python_out=. && \
cd /mnt/src/train/workflows/tf-object-detection-training && \
python main.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--from_preprocessing=True
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: processed-data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/tensorflow/models.git
revision: v1.13.0
name: src
path: /mnt/src/tf
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
sidecars:
- name: tensorboard
image: '{{workflow.parameters.tf-image}}'
entrypoint: main
templates:
- dag:
tasks:
- name: preprocessing
template: preprocessing
- name: train-model
template: tensorflow
dependencies: [preprocessing]
arguments:
artifacts:
- name: data
from: "{{tasks.preprocessing.outputs.artifacts.processed-data}}"
name: main
- container:
args:
- |
apt-get update && \
apt-get install -y python3-pip git wget unzip libglib2.0-0 libsm6 libxext6 libxrender-dev && \
pip install --upgrade pip && \
pip install pillow lxml Cython contextlib2 matplotlib numpy scipy pycocotools pyyaml test-generator && \
cd /mnt/src/tf/research && \
export PYTHONPATH=$PYTHONPATH:`pwd`:`pwd`/slim && \
mkdir -p /mnt/src/protoc && \
wget -P /mnt/src/protoc https://github.com/protocolbuffers/protobuf/releases/download/v3.10.1/protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/protoc/ && \
unzip protoc-3.10.1-linux-x86_64.zip && \
cd /mnt/src/tf/research/ && \
/mnt/src/protoc/bin/protoc object_detection/protos/*.proto --python_out=. && \
cd /mnt/src/train/workflows/tf-object-detection-training && \
python main.py \
--extras="{{workflow.parameters.hyperparameters}}" \
--model="{{workflow.parameters.cvat-model}}" \
--num_classes="{{workflow.parameters.cvat-num-classes}}" \
--sys_finetune_checkpoint="{{workflow.parameters.cvat-finetune-checkpoint}}" \
--from_preprocessing=True
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: processed-data
- mountPath: /mnt/output
name: output
workingDir: /mnt/src
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
- name: models
path: /mnt/data/models/
optional: true
s3:
key: '{{workflow.parameters.cvat-finetune-checkpoint}}'
- git:
repo: https://github.com/tensorflow/models.git
revision: v1.13.0
name: src
path: /mnt/src/tf
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: tsrc
path: /mnt/src/train
name: tensorflow
outputs:
artifacts:
- name: model
optional: true
path: /mnt/output
sidecars:
- name: tensorboard
image: '{{workflow.parameters.tf-image}}'
command:
- sh
- '-c'
env:
- name: ONEPANEL_INTERACTIVE_SIDECAR
value: 'true'
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/checkpoints/
ports:
- containerPort: 6006
name: tensorboard
- container:
args:
# Read logs from /mnt/output - this directory is auto-mounted from volumeMounts
- tensorboard --logdir /mnt/output/checkpoints/
ports:
- containerPort: 6006
name: tensorboard
- container:
args:
- |
pip install --upgrade pip &&\
pip install opencv-python albumentations tqdm pyyaml pycocotools && \
cd /mnt/src/preprocessing/workflows/albumentations-preprocessing && \
python -u main.py \
--data_aug_params="{{workflow.parameters.preprocessing-parameters}}" \
--format="tfrecord" \
--val_split={{workflow.parameters.val-split}} \
--aug_steps={{workflow.parameters.num-augmentation-cycles}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: processed-data
workingDir: /mnt/src
nodeSelector:
{{.NodePoolLabel}}: '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/preprocessing
name: preprocessing
outputs:
artifacts:
- name: processed-data
optional: true
path: /mnt/output
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: processed-data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- |
pip install --upgrade pip &&\
pip install opencv-python albumentations tqdm pyyaml pycocotools && \
cd /mnt/src/preprocessing/workflows/albumentations-preprocessing && \
python -u main.py \
--data_aug_params="{{workflow.parameters.preprocessing-parameters}}" \
--format="tfrecord" \
--val_split={{workflow.parameters.val-split}} \
--aug_steps={{workflow.parameters.num-augmentation-cycles}}
command:
- sh
- -c
image: '{{workflow.parameters.tf-image}}'
volumeMounts:
- mountPath: /mnt/data
name: data
- mountPath: /mnt/output
name: processed-data
workingDir: /mnt/src
nodeSelector:
"{{.NodePoolLabel}}": '{{workflow.parameters.sys-node-pool}}'
inputs:
artifacts:
- name: data
path: /mnt/data/datasets/
s3:
key: '{{workflow.parameters.cvat-annotation-path}}'
- git:
repo: https://github.com/onepanelio/templates.git
revision: v0.18.0
name: src
path: /mnt/src/preprocessing
name: preprocessing
outputs:
artifacts:
- name: processed-data
optional: true
path: /mnt/output
volumeClaimTemplates:
- metadata:
name: data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: processed-data
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi
- metadata:
name: output
spec:
accessModes:
- ReadWriteOnce
resources:
requests:
storage: 200Gi

View File

@@ -0,0 +1,105 @@
metadata:
name: CVAT
kind: Workspace
version: 20200528140124
action: create
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Docker containers that are part of the Workspace
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.7.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: cvat-ui
image: onepanel/cvat-ui:v0.7.0
ports:
- containerPort: 80
name: http
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes
# postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,116 @@
metadata:
name: CVAT
kind: Workspace
version: 20200626113635
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Docker containers that are part of the Workspace
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.7.6
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: cvat-ui
image: onepanel/cvat-ui:v0.7.5
ports:
- containerPort: 80
name: http
- name: filesyncer
image: onepanel/filesyncer:v0.0.4
command: ['python3', 'main.py']
volumeMounts:
- name: share
mountPath: /mnt/share
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,118 @@
metadata:
name: CVAT
kind: Workspace
version: 20200704151301
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Docker containers that are part of the Workspace
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.7.10-stable
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: cvat-ui
image: onepanel/cvat-ui:v0.7.10-stable
ports:
- containerPort: 80
name: http
# Uncomment following lines to enable S3 FileSyncer
# Refer to https://docs.onepanel.ai/docs/getting-started/use-cases/computervision/annotation/cvat/cvat_quick_guide#setting-up-environment-variables
#- name: filesyncer
# image: onepanel/filesyncer:v0.0.4
# command: ['python3', 'main.py']
# volumeMounts:
# - name: share
# mountPath: /mnt/share
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,135 @@
metadata:
name: CVAT
kind: Workspace
version: 20200724220450
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: storage-prefix
displayName: Directory in default object storage
value: data
hint: Location of data and models in default object storage, will continuously sync to '/mnt/share'
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.7.10-stable
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.7.10-stable
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
args:
- download
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workspace.parameters.storage-prefix}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,144 @@
metadata:
name: CVAT
kind: Workspace
version: 20200812113316
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.12.0_cvat.1.0.0-beta.2-cuda
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.12.0_cvat.1.0.0-beta.2
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,144 @@
metadata:
name: CVAT
kind: Workspace
version: 20200824101905
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.12.0-rc.6_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.12.0-rc.1_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,144 @@
metadata:
name: CVAT
kind: Workspace
version: 20200825154403
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.12.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.12.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,156 @@
metadata:
name: CVAT
kind: Workspace
version: 20200826185926
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.12.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.12.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
timeout: 600s
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
timeout: 600s
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,154 @@
metadata:
name: CVAT
kind: Workspace
version: 20201001070806
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.12.1_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.12.1_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,147 +1,154 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.14.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.14.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:{{.ArtifactRepositoryType}}
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20201016170415
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location to sync raw input, models and checkpoints from default object storage. Note that this will be relative to the current namespace.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.14.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /home/django/data
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: data
mountPath: /home/django/data
- name: keys
mountPath: /home/django/keys
- name: logs
mountPath: /home/django/logs
- name: models
mountPath: /home/django/models
- name: share
mountPath: /home/django/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.14.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: "onepanel/filesyncer:{{.ArtifactRepositoryType}}"
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,159 +1,166 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.15.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_KEYS_DIR
value: /cvat/keys
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MODELS_DIR
value: /cvat/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.15.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20201102104048
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.15.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_KEYS_DIR
value: /cvat/keys
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MODELS_DIR
value: /cvat/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.15.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,159 +1,166 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_KEYS_DIR
value: /cvat/keys
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MODELS_DIR
value: /cvat/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20201113094916
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_KEYS_DIR
value: /cvat/keys
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MODELS_DIR
value: /cvat/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,161 +1,168 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20201115133046
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,163 +1,170 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20201211161117
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.16.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.16.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:s3
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,163 +1,170 @@
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.17.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.17.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:0.17.0
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: CVAT
kind: Workspace
version: 20210107094725
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
# Workspace arguments
arguments:
parameters:
- name: sync-directory
displayName: Directory to sync raw input and training output
value: workflow-data
hint: Location (relative to current namespace) to sync raw input, models and checkpoints from default object storage to '/share'.
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:0.17.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: ONEPANEL_SYNC_DIRECTORY
value: '{{workspace.parameters.sync-directory}}'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:0.17.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
# You can add multiple FileSyncer sidecar containers if needed
- name: filesyncer
image: onepanel/filesyncer:0.17.0
imagePullPolicy: Always
args:
- download
- -server-prefix=/sys/filesyncer
env:
- name: FS_PATH
value: /mnt/share
- name: FS_PREFIX
value: '{{workflow.namespace}}/{{workspace.parameters.sync-directory}}'
volumeMounts:
- name: share
mountPath: /mnt/share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
# DAG Workflow to be executed once a Workspace action completes (optional)
# Uncomment the lines below if you want to send Slack notifications
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,134 +1,141 @@
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.18.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.18.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
metadata:
name: CVAT
kind: Workspace
version: 20210129134326
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.18.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.18.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi

View File

@@ -1,134 +1,141 @@
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.19.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.19.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi
metadata:
name: CVAT
kind: Workspace
version: 20210224180017
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.19.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.19.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi

View File

@@ -0,0 +1,141 @@
metadata:
name: CVAT
kind: Workspace
version: 20210323175655
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.19.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.19.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v0.20.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi

View File

@@ -0,0 +1,141 @@
metadata:
name: CVAT
kind: Workspace
version: 20210719190719
action: update
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT)"
spec:
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v0.19.0_cvat.1.0.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v0.19.0_cvat.1.0.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v1.0.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: /api/.*|/git/.*|/tensorflow/.*|/onepanelio/.*|/tracking/.*|/auto_annotation/.*|/analytics/.*|/static/.*|/admin/.*|/documentation/.*|/dextr/.*|/reid/.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: ["ReadWriteOnce"]
resources:
requests:
storage: 20Gi

View File

@@ -0,0 +1,143 @@
metadata:
name: CVAT_1.6.0
kind: Workspace
version: 20211028205201
action: create
description: "Powerful and efficient Computer Vision Annotation Tool (CVAT 1.6.0)"
spec:
containers:
- name: cvat-db
image: postgres:10-alpine
env:
- name: POSTGRES_USER
value: root
- name: POSTGRES_DB
value: cvat
- name: POSTGRES_HOST_AUTH_METHOD
value: trust
- name: PGDATA
value: /var/lib/psql/data
ports:
- containerPort: 5432
name: tcp
volumeMounts:
- name: db
mountPath: /var/lib/psql
- name: cvat-redis
image: redis:4.0-alpine
ports:
- containerPort: 6379
name: tcp
- name: cvat
image: onepanel/cvat:v1.0.2_cvat.1.6.0
env:
- name: DJANGO_MODWSGI_EXTRA_ARGS
value: ""
- name: ALLOWED_HOSTS
value: '*'
- name: CVAT_REDIS_HOST
value: localhost
- name: CVAT_POSTGRES_HOST
value: localhost
- name: CVAT_SHARE_URL
value: /cvat/data
- name: CVAT_SHARE_DIR
value: /share
- name: CVAT_DATA_DIR
value: /cvat/data
- name: CVAT_MEDIA_DATA_DIR
value: /cvat/data/data
- name: CVAT_KEYS_DIR
value: /cvat/data/keys
- name: CVAT_MODELS_DIR
value: /cvat/data/models
- name: CVAT_LOGS_DIR
value: /cvat/logs
- name: CVAT_ANNOTATIONS_OBJECT_STORAGE_PREFIX
value: 'artifacts/$(ONEPANEL_RESOURCE_NAMESPACE)/annotations/'
- name: CVAT_ONEPANEL_WORKFLOWS_LABEL
value: 'key=used-by,value=cvat'
- name: NVIDIA_VISIBLE_DEVICES
value: all
- name: NVIDIA_DRIVER_CAPABILITIES
value: compute,utility
- name: NVIDIA_REQUIRE_CUDA
value: "cuda>=10.0 brand=tesla,driver>=384,driver<385 brand=tesla,driver>=410,driver<411"
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
- name: CVAT_SERVERLESS
value: True
ports:
- containerPort: 8080
name: http
volumeMounts:
- name: cvat-data
mountPath: /cvat
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
- name: cvat-ui
image: onepanel/cvat-ui:v1.0.2_cvat.1.6.0
ports:
- containerPort: 80
name: http
- name: sys-filesyncer
image: onepanel/filesyncer:v1.0.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: share
mountPath: /share
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: cvat-ui
port: 80
protocol: TCP
targetPort: 80
- name: cvat
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
regex: \/?api.*|\/?git.*|\/?tensorflow.*|\/?onepanelio.*|\/?tracking.*|\/?auto_annotation.*|\/?analytics.*|\/?static.*|\/?admin.*|\/?documentation.*|\/?dextr.*|\/?reid.*|\/?django-rq.*
- queryParams:
id:
regex: \d+.*
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
volumeClaimTemplates:
- metadata:
name: db
spec:
accessModes: [ "ReadWriteOnce" ]
resources:
requests:
storage: 20Gi

View File

@@ -0,0 +1,64 @@
metadata:
name: JupyterLab
kind: Workspace
version: 20200525160514
action: create
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab-tensorflow
image: jupyter/tensorflow-notebook
command: [start.sh, jupyter]
env:
- name: tornado
value: "{ 'headers': { 'Content-Security-Policy': \"frame-ancestors * 'self'\" } }"
args:
- lab
- --LabApp.token=''
- --LabApp.allow_remote_access=True
- --LabApp.allow_origin="*"
- --LabApp.disable_check_xsrf=True
- --LabApp.trust_xheaders=True
- --LabApp.tornado_settings=$(tornado)
- --notebook-dir='/data'
ports:
- containerPort: 8888
name: jupyterlab
# Volumes to be mounted in this container
# Onepanel will automatically create these volumes and mount them to the container
volumeMounts:
- name: data
mountPath: /data
# Ports that need to be exposed
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
# Routes that will map to ports
routes:
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes
# postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -0,0 +1,65 @@
metadata:
name: JupyterLab
kind: Workspace
version: 20200821162630
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab-tensorflow
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
args:
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,58 +1,65 @@
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab-tensorflow
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
args:
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: JupyterLab
kind: Workspace
version: 20200929153931
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab-tensorflow
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
args:
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,77 +1,84 @@
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: JupyterLab
kind: Workspace
version: 20201028145442
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,79 +1,86 @@
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: JupyterLab
kind: Workspace
version: 20201031165106
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,80 +1,87 @@
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: JupyterLab
kind: Workspace
version: 20201214133458
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/jupyterlab:1.0.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * \'self\'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ \'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,93 +1,100 @@
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: JupyterLab
kind: Workspace
version: 20201229205644
action: update
description: "Interactive development environment for notebooks"
spec:
# Docker containers that are part of the Workspace
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: / #jupyter runs at the default route
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,101 +1,108 @@
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
metadata:
name: JupyterLab
kind: Workspace
version: 20210129142057
action: update
description: "Interactive development environment for notebooks"
spec:
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80

View File

@@ -1,101 +1,108 @@
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
metadata:
name: JupyterLab
kind: Workspace
version: 20210224180017
action: update
description: "Interactive development environment for notebooks"
spec:
containers:
- name: jupyterlab
image: onepanel/dl:0.17.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80

View File

@@ -0,0 +1,108 @@
metadata:
name: JupyterLab
kind: Workspace
version: 20210323175655
action: update
description: "Interactive development environment for notebooks"
spec:
containers:
- name: jupyterlab
image: onepanel/dl:v0.20.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.20.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80

View File

@@ -0,0 +1,108 @@
metadata:
name: JupyterLab
kind: Workspace
version: 20210719190719
action: update
description: "Interactive development environment for notebooks"
spec:
containers:
- name: jupyterlab
image: onepanel/dl:v0.20.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && start.sh LD_LIBRARY_PATH=/usr/local/nvidia/lib:/usr/local/nvidia/lib64 jupyter lab --LabApp.token='' --LabApp.allow_remote_access=True --LabApp.allow_origin=\"*\" --LabApp.disable_check_xsrf=True --LabApp.trust_xheaders=True --LabApp.base_url=/ --LabApp.tornado_settings='{\"headers\":{\"Content-Security-Policy\":\"frame-ancestors * 'self'\"}}' --notebook-dir='/data' --allow-root"]
workingDir: /data
env:
- name: tornado
value: "'{'headers':{'Content-Security-Policy':\"frame-ancestors\ *\ 'self'\"}}'"
- name: TENSORBOARD_PROXY_URL
value: '//$(ONEPANEL_RESOURCE_UID)--$(ONEPANEL_RESOURCE_NAMESPACE).$(ONEPANEL_DOMAIN)/tensorboard'
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8888
name: jupyterlab
- containerPort: 6006
name: tensorboard
- containerPort: 8080
name: nni
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
jupytertxt="/data/.jupexported.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$jupytertxt" ]; then cat $jupytertxt | xargs -n 1 jupyter labextension install --no-build && jupyter lab build --minimize=False; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
jupyter labextension list 1>/dev/null 2> /data/.jup.txt;
cat /data/.jup.txt | sed -n '2,$p' | awk 'sub(/v/,"@", $2){print $1$2}' > /data/.jupexported.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v1.0.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: jupyterlab
port: 80
protocol: TCP
targetPort: 8888
- name: tensorboard
port: 6006
protocol: TCP
targetPort: 6006
- name: nni
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /tensorboard
route:
- destination:
port:
number: 6006
- match:
- uri:
prefix: /nni
route:
- destination:
port:
number: 8080
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80

View File

@@ -0,0 +1,64 @@
metadata:
name: "Deep Learning Desktop"
kind: Workspace
version: 20210414165510
action: create
description: "Deep learning desktop with VNC"
spec:
arguments:
parameters:
# parameter screen-resolution allows users to select screen resolution
- name: screen-resolution
value: 1680x1050
type: select.select
displayName: Screen Resolution
options:
- name: 1280x1024
value: 1280x1024
- name: 1680x1050
value: 1680x1050
- name: 2880x1800
value: 2880x1800
containers:
- name: ubuntu
image: onepanel/vnc:dl-vnc
env:
- name: VNC_PASSWORDLESS
value: true
- name: VNC_RESOLUTION
value: '{{workflow.parameters.screen-resolution}}'
ports:
- containerPort: 6901
name: vnc
volumeMounts:
- name: data
mountPath: /data
ports:
- name: vnc
port: 80
protocol: TCP
targetPort: 6901
routes:
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh

View File

@@ -0,0 +1,88 @@
metadata:
name: "Deep Learning Desktop"
kind: Workspace
version: 20210719190719
action: update
description: "Deep learning desktop with VNC"
spec:
arguments:
parameters:
# parameter screen-resolution allows users to select screen resolution
- name: screen-resolution
value: 1680x1050
type: select.select
displayName: Screen Resolution
options:
- name: 1280x1024
value: 1280x1024
- name: 1680x1050
value: 1680x1050
- name: 2880x1800
value: 2880x1800
containers:
- name: ubuntu
image: onepanel/vnc:dl-vnc
env:
- name: VNC_PASSWORDLESS
value: true
- name: VNC_RESOLUTION
value: '{{workflow.parameters.screen-resolution}}'
ports:
- containerPort: 6901
name: vnc
volumeMounts:
- name: data
mountPath: /data
- name: sys-filesyncer
image: onepanel/filesyncer:v1.0.0
imagePullPolicy: Always
args:
- server
- -host=localhost:8889
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vnc
port: 80
protocol: TCP
targetPort: 6901
- name: fs
port: 8889
protocol: TCP
targetPort: 8889
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8889
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 80
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh

View File

@@ -1,41 +1,48 @@
# Docker containers that are part of the Workspace
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: / #vscode runs at the default route
route:
- destination:
port:
number: 8080
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20200929144301
action: create
description: "Open source code editor"
spec:
# Docker containers that are part of the Workspace
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: / #vscode runs at the default route
route:
- destination:
port:
number: 8080
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,60 +1,66 @@
# Docker containers that are part of the Workspace
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: / #vscode runs at the default route
route:
- destination:
port:
number: 8080
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20201028145443
action: update
spec:
# Docker containers that are part of the Workspace
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
routes:
- match:
- uri:
prefix: / #vscode runs at the default route
route:
- destination:
port:
number: 8080
# DAG Workflow to be executed once a Workspace action completes (optional)
#postExecutionWorkflow:
# entrypoint: main
# templates:
# - name: main
# dag:
# tasks:
# - name: slack-notify
# template: slack-notify
# - name: slack-notify
# container:
# image: technosophos/slack-notify
# args:
# - SLACK_USERNAME=onepanel SLACK_TITLE="Your workspace is ready" SLACK_ICON=https://www.gravatar.com/avatar/5c4478592fe00878f62f0027be59c1bd SLACK_MESSAGE="Your workspace is now running" ./slack-notify
# command:
# - sh
# - -c

View File

@@ -1,68 +1,74 @@
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20210129152427
action: update
spec:
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.18.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080

View File

@@ -1,68 +1,74 @@
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20210224180017
action: update
spec:
containers:
- name: vscode
image: onepanel/vscode:1.0.0
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.19.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080

View File

@@ -0,0 +1,74 @@
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20210323175655
action: update
spec:
containers:
- name: vscode
image: onepanel/vscode:v0.20.0_code-server.3.9.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v0.20.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080

View File

@@ -0,0 +1,74 @@
metadata:
name: "Visual Studio Code"
kind: Workspace
version: 20210719190719
action: update
spec:
containers:
- name: vscode
image: onepanel/vscode:v0.20.0_code-server.3.9.1
command: ["/bin/bash", "-c", "pip install onepanel-sdk && /usr/bin/entrypoint.sh --bind-addr 0.0.0.0:8080 --auth none ."]
env:
- name: ONEPANEL_MAIN_CONTAINER
value: 'true'
ports:
- containerPort: 8080
name: vscode
volumeMounts:
- name: data
mountPath: /data
lifecycle:
postStart:
exec:
command:
- /bin/sh
- -c
- >
condayml="/data/.environment.yml";
vscodetxt="/data/.vscode-extensions.txt";
if [ -f "$condayml" ]; then conda env update -f $condayml; fi;
if [ -f "$vscodetxt" ]; then cat $vscodetxt | xargs -n 1 code-server --install-extension; fi;
preStop:
exec:
command:
- /bin/sh
- -c
- >
conda env export > /data/.environment.yml -n base;
code-server --list-extensions | tail -n +2 > /data/.vscode-extensions.txt;
- name: sys-filesyncer
image: onepanel/filesyncer:v1.0.0
imagePullPolicy: Always
args:
- server
- -server-prefix=/sys/filesyncer
volumeMounts:
- name: data
mountPath: /data
- name: sys-namespace-config
mountPath: /etc/onepanel
readOnly: true
ports:
- name: vscode
port: 8080
protocol: TCP
targetPort: 8080
- name: fs
port: 8888
protocol: TCP
targetPort: 8888
routes:
- match:
- uri:
prefix: /sys/filesyncer
route:
- destination:
port:
number: 8888
- match:
- uri:
prefix: /
route:
- destination:
port:
number: 8080

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