pipeline.py 4.9 KB

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  1. # copyright (c) 2024 PaddlePaddle Authors. All Rights Reserve.
  2. #
  3. # Licensed under the Apache License, Version 2.0 (the "License");
  4. # you may not use this file except in compliance with the License.
  5. # You may obtain a copy of the License at
  6. #
  7. # http://www.apache.org/licenses/LICENSE-2.0
  8. #
  9. # Unless required by applicable law or agreed to in writing, software
  10. # distributed under the License is distributed on an "AS IS" BASIS,
  11. # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. # See the License for the specific language governing permissions and
  13. # limitations under the License.
  14. from typing import Any, Dict, Optional, Union, Tuple, List
  15. import numpy as np
  16. from ...utils.pp_option import PaddlePredictorOption
  17. from ..base import BasePipeline
  18. # [TODO] 待更新models_new到models
  19. from ...models_new.keypoint_detection.result import KptResult
  20. Number = Union[int, float]
  21. class KeypointDetectionPipeline(BasePipeline):
  22. """Keypoint Detection pipeline"""
  23. entities = "human_keypoint_detection"
  24. def __init__(
  25. self,
  26. config: Dict,
  27. device: str = None,
  28. pp_option: PaddlePredictorOption = None,
  29. use_hpip: bool = False,
  30. ) -> None:
  31. """
  32. Initializes the class with given configurations and options.
  33. Args:
  34. config (Dict): Configuration dictionary containing model and other parameters.
  35. device (str): The device to run the prediction on. Default is None.
  36. pp_option (PaddlePredictorOption): Options for PaddlePaddle predictor. Default is None.
  37. use_hpip (bool): Whether to use high-performance inference (hpip) for prediction. Defaults to False.
  38. """
  39. super().__init__(device=device, pp_option=pp_option, use_hpip=use_hpip)
  40. # create object detection model
  41. model_cfg = config["SubModules"]["ObjectDetection"]
  42. model_kwargs = {}
  43. if "threshold" in model_cfg:
  44. model_kwargs["threshold"] = model_cfg["threshold"]
  45. if "img_size" in model_cfg:
  46. model_kwargs["img_size"] = model_cfg["img_size"]
  47. self.det_model = self.create_model(model_cfg, **model_kwargs)
  48. # create keypoint detection model
  49. model_cfg = config["SubModules"]["KeypointDetection"]
  50. model_kwargs = {}
  51. if "flip" in model_cfg:
  52. model_kwargs["flip"] = model_cfg["flip"]
  53. if "use_udp" in model_cfg:
  54. model_kwargs["use_udp"] = model_cfg["use_udp"]
  55. self.kpt_model = self.create_model(model_cfg, **model_kwargs)
  56. self.kpt_input_size = self.kpt_model.input_size
  57. def _box_xyxy2cs(
  58. self, bbox: Union[Number, np.ndarray], padding: float = 1.25
  59. ) -> Tuple[np.ndarray, np.ndarray]:
  60. """
  61. Convert bounding box from (x1, y1, x2, y2) to center and scale.
  62. Args:
  63. bbox (Union[Number, np.ndarray]): The bounding box coordinates (x1, y1, x2, y2).
  64. padding (float): The padding factor to adjust the scale of the bounding box.
  65. Returns:
  66. Tuple[np.ndarray, np.ndarray]: The center and scale of the bounding box.
  67. """
  68. x1, y1, x2, y2 = bbox[:4]
  69. center = np.array([x1 + x2, y1 + y2]) * 0.5
  70. # reshape bbox to fixed aspect ratio
  71. aspect_ratio = self.kpt_input_size[0] / self.kpt_input_size[1]
  72. w, h = x2 - x1, y2 - y1
  73. if w > aspect_ratio * h:
  74. h = w / aspect_ratio
  75. elif w < aspect_ratio * h:
  76. w = h * aspect_ratio
  77. scale = np.array([w, h]) * padding
  78. return center, scale
  79. def predict(
  80. self, input: Union[str, List[str], np.ndarray, List[np.ndarray]], **kwargs
  81. ) -> KptResult:
  82. """Predicts image classification results for the given input.
  83. Args:
  84. input (Union[str, list[str], np.ndarray, list[np.ndarray]]): The input image(s) or path(s) to the images.
  85. **kwargs: Additional keyword arguments that can be passed to the function.
  86. Returns:
  87. KptResult: The predicted KeyPoint Detection results.
  88. """
  89. for det_res in self.det_model(input):
  90. ori_img, img_path = det_res["input_img"], det_res["input_path"]
  91. single_img_res = {"input_path": img_path, "input_img": ori_img, "boxes": []}
  92. for box in det_res["boxes"]:
  93. center, scale = self._box_xyxy2cs(box["coordinate"])
  94. kpt_res = next(
  95. self.kpt_model(
  96. {
  97. "img": ori_img,
  98. "center": center,
  99. "scale": scale,
  100. }
  101. )
  102. )
  103. single_img_res["boxes"].append(
  104. {
  105. "coordinate": box["coordinate"],
  106. "det_score": box["score"],
  107. "keypoints": kpt_res["kpts"][0]["keypoints"],
  108. }
  109. )
  110. yield KptResult(single_img_res)