yolov7end2end_trt.py 4.9 KB

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  1. # Copyright (c) 2024 PaddlePaddle Authors. All Rights Reserved.
  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 __future__ import absolute_import
  15. from .... import UltraInferModel, ModelFormat
  16. from .... import c_lib_wrap as C
  17. class YOLOv7End2EndTRT(UltraInferModel):
  18. def __init__(
  19. self,
  20. model_file,
  21. params_file="",
  22. runtime_option=None,
  23. model_format=ModelFormat.ONNX,
  24. ):
  25. """Load a YOLOv7End2EndTRT model exported by YOLOv7.
  26. :param model_file: (str)Path of model file, e.g ./yolov7end2end_trt.onnx
  27. :param params_file: (str)Path of parameters file, e.g yolox/model.pdiparams, if the model_fomat is ModelFormat.ONNX, this param will be ignored, can be set as empty string
  28. :param runtime_option: (ultra_infer.RuntimeOption)RuntimeOption for inference this model, if it's None, will use the default backend on CPU
  29. :param model_format: (ultra_infer.ModelForamt)Model format of the loaded model
  30. """
  31. # 调用基函数进行backend_option的初始化
  32. # 初始化后的option保存在self._runtime_option
  33. super(YOLOv7End2EndTRT, self).__init__(runtime_option)
  34. self._model = C.vision.detection.YOLOv7End2EndTRT(
  35. model_file, params_file, self._runtime_option, model_format
  36. )
  37. # 通过self.initialized判断整个模型的初始化是否成功
  38. assert self.initialized, "YOLOv7End2EndTRT initialize failed."
  39. def predict(self, input_image, conf_threshold=0.25):
  40. """Detect an input image
  41. :param input_image: (numpy.ndarray)The input image data, 3-D array with layout HWC, BGR format
  42. :param conf_threshold: confidence threshold for postprocessing, default is 0.25
  43. :return: DetectionResult
  44. """
  45. return self._model.predict(input_image, conf_threshold)
  46. # 一些跟模型有关的属性封装
  47. # 多数是预处理相关,可通过修改如model.size = [1280, 1280]改变预处理时resize的大小(前提是模型支持)
  48. @property
  49. def size(self):
  50. """
  51. Argument for image preprocessing step, the preprocess image size, tuple of (width, height), default size = [640, 640]
  52. """
  53. return self._model.size
  54. @property
  55. def padding_value(self):
  56. # padding value, size should be the same as channels
  57. return self._model.padding_value
  58. @property
  59. def is_no_pad(self):
  60. # while is_mini_pad = false and is_no_pad = true, will resize the image to the set size
  61. return self._model.is_no_pad
  62. @property
  63. def is_mini_pad(self):
  64. # only pad to the minimum rectangle which height and width is times of stride
  65. return self._model.is_mini_pad
  66. @property
  67. def is_scale_up(self):
  68. # if is_scale_up is false, the input image only can be zoom out, the maximum resize scale cannot exceed 1.0
  69. return self._model.is_scale_up
  70. @property
  71. def stride(self):
  72. # padding stride, for is_mini_pad
  73. return self._model.stride
  74. @size.setter
  75. def size(self, wh):
  76. assert isinstance(
  77. wh, (list, tuple)
  78. ), "The value to set `size` must be type of tuple or list."
  79. assert (
  80. len(wh) == 2
  81. ), "The value to set `size` must contains 2 elements means [width, height], but now it contains {} elements.".format(
  82. len(wh)
  83. )
  84. self._model.size = wh
  85. @padding_value.setter
  86. def padding_value(self, value):
  87. assert isinstance(
  88. value, list
  89. ), "The value to set `padding_value` must be type of list."
  90. self._model.padding_value = value
  91. @is_no_pad.setter
  92. def is_no_pad(self, value):
  93. assert isinstance(
  94. value, bool
  95. ), "The value to set `is_no_pad` must be type of bool."
  96. self._model.is_no_pad = value
  97. @is_mini_pad.setter
  98. def is_mini_pad(self, value):
  99. assert isinstance(
  100. value, bool
  101. ), "The value to set `is_mini_pad` must be type of bool."
  102. self._model.is_mini_pad = value
  103. @is_scale_up.setter
  104. def is_scale_up(self, value):
  105. assert isinstance(
  106. value, bool
  107. ), "The value to set `is_scale_up` must be type of bool."
  108. self._model.is_scale_up = value
  109. @stride.setter
  110. def stride(self, value):
  111. assert isinstance(value, int), "The value to set `stride` must be type of int."
  112. self._model.stride = value