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- // Copyright (c) 2021 PaddlePaddle Authors. All Rights Reserved.
- //
- // Licensed under the Apache License, Version 2.0 (the "License");
- // you may not use this file except in compliance with the License.
- // You may obtain a copy of the License at
- //
- // http://www.apache.org/licenses/LICENSE-2.0
- //
- // Unless required by applicable law or agreed to in writing, software
- // distributed under the License is distributed on an "AS IS" BASIS,
- // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
- // See the License for the specific language governing permissions and
- // limitations under the License.
- #ifndef __PicoDet_H__
- #define __PicoDet_H__
- #pragma once
- #include "Interpreter.hpp"
- #include "ImageProcess.hpp"
- #include "MNNDefine.h"
- #include "Tensor.hpp"
- #include <algorithm>
- #include <chrono>
- #include <iostream>
- #include <memory>
- #include <opencv2/opencv.hpp>
- #include <string>
- #include <vector>
- typedef struct NonPostProcessHeadInfo_ {
- std::string cls_layer;
- std::string dis_layer;
- int stride;
- } NonPostProcessHeadInfo;
- typedef struct BoxInfo_ {
- float x1;
- float y1;
- float x2;
- float y2;
- float score;
- int label;
- } BoxInfo;
- class PicoDet {
- public:
- PicoDet(const std::string &mnn_path, int input_width, int input_length,
- int num_thread_ = 4, float score_threshold_ = 0.5,
- float nms_threshold_ = 0.3);
- ~PicoDet();
- int detect(cv::Mat &img, std::vector<BoxInfo> &result_list,
- bool has_postprocess);
- private:
- void decode_infer(MNN::Tensor *cls_pred, MNN::Tensor *dis_pred, int stride,
- float threshold,
- std::vector<std::vector<BoxInfo>> &results);
- BoxInfo disPred2Bbox(const float *&dfl_det, int label, float score, int x,
- int y, int stride);
- void nms(std::vector<BoxInfo> &input_boxes, float NMS_THRESH);
- private:
- std::shared_ptr<MNN::Interpreter> PicoDet_interpreter;
- MNN::Session *PicoDet_session = nullptr;
- MNN::Tensor *input_tensor = nullptr;
- int num_thread;
- int image_w;
- int image_h;
- int in_w = 320;
- int in_h = 320;
- float score_threshold;
- float nms_threshold;
- const float mean_vals[3] = {103.53f, 116.28f, 123.675f};
- const float norm_vals[3] = {0.017429f, 0.017507f, 0.017125f};
- const int num_class = 80;
- const int reg_max = 7;
- std::vector<float> bbox_output_data_;
- std::vector<float> class_output_data_;
- std::vector<std::string> nms_heads_info{"tmp_16", "concat_4.tmp_0"};
- // If not export post-process, will use non_postprocess_heads_info
- std::vector<NonPostProcessHeadInfo> non_postprocess_heads_info{
- // cls_pred|dis_pred|stride
- {"transpose_0.tmp_0", "transpose_1.tmp_0", 8},
- {"transpose_2.tmp_0", "transpose_3.tmp_0", 16},
- {"transpose_4.tmp_0", "transpose_5.tmp_0", 32},
- {"transpose_6.tmp_0", "transpose_7.tmp_0", 64},
- };
- };
- template <typename _Tp>
- int activation_function_softmax(const _Tp *src, _Tp *dst, int length);
- inline float fast_exp(float x);
- inline float sigmoid(float x);
- #endif
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