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			101 lines
		
	
	
		
			4.1 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			101 lines
		
	
	
		
			4.1 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
| # Copyright (c) 2022 PaddlePaddle Authors. All Rights Reserved.
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| #
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| # Licensed under the Apache License, Version 2.0 (the "License");
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| # you may not use this file except in compliance with the License.
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| # You may obtain a copy of the License at
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| #
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| #     http://www.apache.org/licenses/LICENSE-2.0
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| #
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| # Unless required by applicable law or agreed to in writing, software
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| # distributed under the License is distributed on an "AS IS" BASIS,
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| # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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| # See the License for the specific language governing permissions and
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| # limitations under the License.
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| 
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| import fastdeploy as fd
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| import cv2
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| import os
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| import numpy as np
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| import runtime_config as rc
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| 
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| def test_keypointdetection_pptinypose():
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|     pp_tinypose_model_url = "https://bj.bcebos.com/fastdeploy/tests/PP_TinyPose_256x192_test.tgz"
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|     fd.download_and_decompress(pp_tinypose_model_url, "resources")
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|     model_path = "./resources/PP_TinyPose_256x192_test"
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|     # 配置runtime,加载模型
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|     runtime_option = fd.RuntimeOption()
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|     model_file = os.path.join(model_path, "model.pdmodel")
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|     params_file = os.path.join(model_path, "model.pdiparams")
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|     config_file = os.path.join(model_path, "infer_cfg.yml")
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|     image_file = os.path.join(model_path, "hrnet_demo.jpg")
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|     baseline_file = os.path.join(model_path, "baseline.npy")
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|     model = fd.vision.keypointdetection.PPTinyPose(
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|         model_file, params_file, config_file, runtime_option=rc.test_option)
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| 
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|     # 预测图片关键点
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|     im = cv2.imread(image_file)
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|     result = model.predict(im)
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|     result = np.concatenate(
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|         (np.array(result.keypoints), np.array(result.scores)[:, np.newaxis]),
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|         axis=1)
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|     baseline = np.load(baseline_file)
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|     diff = np.fabs(result - np.array(baseline))
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|     thres = 1e-05
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|     assert diff.max() < thres, "The diff is %f, which is bigger than %f" % (
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|         diff.max(), thres)
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|     print("No diff")
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| 
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| 
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| def test_keypointdetection_det_keypoint_unite():
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|     det_keypoint_unite_model_url = "https://bj.bcebos.com/fastdeploy/tests/PicoDet_320x320_TinyPose_256x192_test.tgz"
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|     fd.download_and_decompress(det_keypoint_unite_model_url, "resources")
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|     model_path = "./resources/PicoDet_320x320_TinyPose_256x192_test"
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|     # 配置runtime,加载模型
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|     runtime_option = fd.RuntimeOption()
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|     tinypose_model_file = os.path.join(
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|         model_path, "PP_TinyPose_256x192_infer/model.pdmodel")
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|     tinypose_params_file = os.path.join(
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|         model_path, "PP_TinyPose_256x192_infer/model.pdiparams")
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|     tinypose_config_file = os.path.join(
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|         model_path, "PP_TinyPose_256x192_infer/infer_cfg.yml")
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|     picodet_model_file = os.path.join(
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|         model_path, "PP_PicoDet_V2_S_Pedestrian_320x320_infer/model.pdmodel")
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|     picodet_params_file = os.path.join(
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|         model_path, "PP_PicoDet_V2_S_Pedestrian_320x320_infer/model.pdiparams")
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|     picodet_config_file = os.path.join(
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|         model_path, "PP_PicoDet_V2_S_Pedestrian_320x320_infer/infer_cfg.yml")
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|     image_file = os.path.join(model_path, "000000018491.jpg")
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|     # image_file = os.path.join(model_path, "hrnet_demo.jpg")
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| 
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|     baseline_file = os.path.join(model_path, "baseline.npy")
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| 
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|     tinypose_model = fd.vision.keypointdetection.PPTinyPose(
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|         tinypose_model_file,
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|         tinypose_params_file,
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|         tinypose_config_file,
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|         runtime_option=runtime_option)
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| 
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|     det_model = fd.vision.detection.PicoDet(
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|         picodet_model_file,
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|         picodet_params_file,
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|         picodet_config_file,
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|         runtime_option=rc.test_option)
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| 
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|     # 预测图片关键点
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|     im = cv2.imread(image_file)
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|     pipeline = fd.pipeline.PPTinyPose(det_model, tinypose_model)
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|     pipeline.detection_model_score_threshold = 0.5
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|     result = pipeline.predict(im)
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|     print(result)
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|     result = np.concatenate(
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|         (np.array(result.keypoints), np.array(result.scores)[:, np.newaxis]),
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|         axis=1)
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|     print(result)
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|     np.save("resources/baseline.npy", result)
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|     baseline = np.load(baseline_file)
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|     diff = np.fabs(result - np.array(baseline))
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|     thres = 1e-05
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|     assert diff.max() < thres, "The diff is %f, which is bigger than %f" % (
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|         diff.max(), thres)
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|     print("No diff")
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