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			82 lines
		
	
	
		
			4.5 KiB
		
	
	
	
		
			Markdown
		
	
	
	
	
	
| English | [简体中文](README_CN.md)
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| # YOLOv7End2EndTRT Python Deployment Example
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| 
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| Two steps before deployment
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| 
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| - 1. Software and hardware should meet the requirements. Please refer to [FastDeploy  Environment Requirements](../../../../../docs/en/build_and_install/download_prebuilt_libraries.md)  
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| - 2. Install FastDeploy Python whl p ackage. Refer to [FastDeploy Python Installation](../../../../../docs/en/build_and_install/download_prebuilt_libraries.md)
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| 
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| This directory provides examples that `infer.py` fast finishes the deployment of YOLOv7End2EndTRT accelerated by TensorRT. The script is as follows
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| ```bash
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| # Download the example code for deployment
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| git clone https://github.com/PaddlePaddle/FastDeploy.git
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| cd FastDeploy/examples/vision/detection/yolov7end2end_trt/python/
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| 
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| # Download yolov7 model files and test images
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| wget https://bj.bcebos.com/paddlehub/fastdeploy/yolov7-end2end-trt-nms.onnx
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| wget https://gitee.com/paddlepaddle/PaddleDetection/raw/release/2.4/demo/000000014439.jpg
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| 
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| # TensorRT inference on GPU 
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| python infer.py --model yolov7-end2end-trt-nms.onnx --image 000000014439.jpg --device gpu --use_trt True
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| # If it is not supported by the python package, compile the latest FastDeploy Python Wheel package from the source code in develop branch and install it.
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| ```
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| 
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| The visualized result after running is as follows
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| 
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| <div align='center'>
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|   <img width="640" alt="image" src="https://user-images.githubusercontent.com/31974251/186605967-ad0c53f2-3ce8-4032-a90f-6f5c1238e7f4.png">
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| </div>
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| 
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| Attention: YOLOv7End2EndTRT is designed for the inference of End2End models with [TRT_NMS](https://github.com/WongKinYiu/yolov7/blob/main/models/experimental.py#L111) among the YOLOv7 exported models. For models without nms, use YOLOv7 class for inference. For End2End models with [ORT_NMS](https://github.com/WongKinYiu/yolov7/blob/main/models/experimental.py#L87), use YOLOv7End2EndTRT for inference.
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| 
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| ## YOLOv7End2EndTRT Python Interface 
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| 
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| ```python
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| fastdeploy.vision.detection.YOLOv7End2EndTRT(model_file, params_file=None, runtime_option=None, model_format=ModelFormat.ONNX)
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| ```
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| 
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| YOLOv7End2EndTRT model loading and initialization, among which model_file is the exported ONNX model format
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| 
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| **Parameter**
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| 
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| > * **model_file**(str): Model file path 
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| > * **params_file**(str): Parameter file path. No need to set when the model is in ONNX format
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| > * **runtime_option**(RuntimeOption): Backend inference configuration. None by default, which is the default configuration
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| > * **model_format**(ModelFormat): Model format. ONNX format by default
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| 
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| ### predict function
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| 
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| > ```python
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| > YOLOv7End2EndTRT.predict(image_data, conf_threshold=0.25)
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| > ```
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| >
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| > Model prediction interface. Input images and output detection results.
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| >
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| > **Parameter**
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| >
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| > > * **image_data**(np.ndarray): Input data in HWC or BGR format
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| > > * **conf_threshold**(float): Filtering threshold of detection box confidence. But considering that YOLOv7 End2End models have a score threshold specified during ONNX export, this parameter will be effective when being greater than the specified one.
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| 
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| > **Return**
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| >
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| > > Return `fastdeploy.vision.DetectionResult` structure. Refer to [Vision Model Prediction Results](../../../../../docs/api/vision_results/) for its description.
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| 
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| ### Class Member Property
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| #### Pre-processing Parameter
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| Users can modify the following pre-processing parameters to their needs, which affects the final inference and deployment results
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| 
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| > > * **size**(list[int]): This parameter changes resize used during preprocessing, containing two integer elements for [width, height] with default value [640, 640]
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| > > * **padding_value**(list[float]): This parameter is used to change the padding value of images during resize, containing three floating-point elements that represent the value of three channels. Default value [114, 114, 114]
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| > > * **is_no_pad**(bool): Specify whether to resize the image through padding. `is_no_pad=True` represents no paddling. Default `is_no_pad=False`
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| > > * **is_mini_pad**(bool): This parameter sets the width and height of the image after resize to the value nearest to the `size` member variable and to the point where the padded pixel size is divisible by the `stride` member variable. Default `is_mini_pad=False`
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| > > * **stride**(int): Used with the `stris_mini_padide` member variable. Default `stride=32`
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| 
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| 
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| 
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| ## Other Documents
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| 
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| - [YOLOv7End2EndTRT Model Description](..)
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| - [YOLOv7End2EndTRT C++ Deployment](../cpp)
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| - [Model Prediction Results](../../../../../docs/api/vision_results/)
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| - [How to switch the model inference backend engine](../../../../../docs/en/faq/how_to_change_backend.md)
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