yolov7end2end_ort.h 3.7 KB

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  1. // Copyright (c) 2022 PaddlePaddle Authors. All Rights Reserved. //NOLINT
  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. #pragma once
  15. #include "ultra_infer/ultra_infer_model.h"
  16. #include "ultra_infer/vision/common/processors/transform.h"
  17. #include "ultra_infer/vision/common/result.h"
  18. namespace ultra_infer {
  19. namespace vision {
  20. namespace detection {
  21. /*! @brief YOLOv7End2EndORT model object used when to load a YOLOv7End2EndORT
  22. * model exported by YOLOv7.
  23. */
  24. class ULTRAINFER_DECL YOLOv7End2EndORT : public UltraInferModel {
  25. public:
  26. /** \brief Set path of model file and the configuration of runtime.
  27. *
  28. * \param[in] model_file Path of model file, e.g ./yolov7end2end_ort.onnx
  29. * \param[in] params_file Path of parameter file, e.g ppyoloe/model.pdiparams,
  30. * if the model format is ONNX, this parameter will be ignored \param[in]
  31. * custom_option RuntimeOption for inference, the default will use cpu, and
  32. * choose the backend defined in "valid_cpu_backends" \param[in] model_format
  33. * Model format of the loaded model, default is ONNX format
  34. */
  35. YOLOv7End2EndORT(const std::string &model_file,
  36. const std::string &params_file = "",
  37. const RuntimeOption &custom_option = RuntimeOption(),
  38. const ModelFormat &model_format = ModelFormat::ONNX);
  39. virtual std::string ModelName() const { return "yolov7end2end_ort"; }
  40. /** \brief Predict the detection result for an input image
  41. *
  42. * \param[in] im The input image data, comes from cv::imread(), is a 3-D array
  43. * with layout HWC, BGR format \param[in] result The output detection result
  44. * will be written to this structure \param[in] conf_threshold confidence
  45. * threshold for postprocessing, default is 0.25 \return true if the
  46. * prediction succeeded, otherwise false
  47. */
  48. virtual bool Predict(cv::Mat *im, DetectionResult *result,
  49. float conf_threshold = 0.25);
  50. /*! @brief
  51. Argument for image preprocessing step, tuple of (width, height), decide the
  52. target size after resize, default size = {640, 640}
  53. */
  54. std::vector<int> size;
  55. // padding value, size should be the same as channels
  56. std::vector<float> padding_value;
  57. // only pad to the minimum rectangle which height and width is times of stride
  58. bool is_mini_pad;
  59. // while is_mini_pad = false and is_no_pad = true,
  60. // will resize the image to the set size
  61. bool is_no_pad;
  62. // if is_scale_up is false, the input image only can be zoom out,
  63. // the maximum resize scale cannot exceed 1.0
  64. bool is_scale_up;
  65. // padding stride, for is_mini_pad
  66. int stride;
  67. private:
  68. bool Initialize();
  69. bool Preprocess(Mat *mat, FDTensor *output,
  70. std::map<std::string, std::array<float, 2>> *im_info);
  71. bool Postprocess(FDTensor &infer_result, DetectionResult *result,
  72. const std::map<std::string, std::array<float, 2>> &im_info,
  73. float conf_threshold);
  74. void LetterBox(Mat *mat, const std::vector<int> &size,
  75. const std::vector<float> &color, bool _auto,
  76. bool scale_fill = false, bool scale_up = true,
  77. int stride = 32);
  78. bool is_dynamic_input_;
  79. };
  80. } // namespace detection
  81. } // namespace vision
  82. } // namespace ultra_infer