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+简体中文 | [English](README.md)
+
+# FairMOT (FairMOT: On the Fairness of Detection and Re-Identification in Multiple Object Tracking)
+
+## 内容
+- [简介](#简介)
+- [模型库](#模型库)
+- [快速开始](#快速开始)
+- [引用](#引用)
+
+## 简介
+
+[FairMOT](https://arxiv.org/abs/2004.01888)以Anchor Free的CenterNet检测器为基础,克服了Anchor-Based的检测框架中anchor和特征不对齐问题,深浅层特征融合使得检测和ReID任务各自获得所需要的特征,并且使用低维度ReID特征,提出了一种由两个同质分支组成的简单baseline来预测像素级目标得分和ReID特征,实现了两个任务之间的公平性,并获得了更高水平的实时多目标跟踪精度。
+
+
+
+
+
+## 模型库
+
+### FairMOT在HT-21 Training Set上结果
+
+| 骨干网络 | 输入尺寸 | MOTA | IDF1 | IDS | FP | FN | FPS | 下载链接 | 配置文件 |
+| :--------------| :------- | :----: | :----: | :---: | :----: | :---: | :------: | :----: |:----: |
+| DLA-34 | 1088x608 | 67.2 | 70.4 | 9403 | 124840 | 255007 | - | [下载链接](https://paddledet.bj.bcebos.com/models/mot/fairmot_dla34_30e_1088x608_headtracking21.pdparams) | [配置文件](https://github.com/PaddlePaddle/PaddleDetection/tree/develop/configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml) |
+
+
+### FairMOT在HT-21 Test Set上结果
+
+| 骨干网络 | 输入尺寸 | MOTA | IDF1 | IDS | FP | FN | FPS | 下载链接 | 配置文件 |
+| :--------------| :------- | :----: | :----: | :----: | :----: | :----: |:-------: | :----: | :----: |
+| DLA-34 | 1088x608 | 58.2 | 61.3 | 13166 | 141872 | 197074 | - | [下载链接](https://paddledet.bj.bcebos.com/models/mot/fairmot_dla34_30e_1088x608_headtracking21.pdparams) | [配置文件](https://github.com/PaddlePaddle/PaddleDetection/tree/develop/configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml) |
+
+**注意:**
+ FairMOT使用8个GPU进行训练,每个GPU上batch size为6,训练30个epoch。
+
+## 快速开始
+
+### 1. 训练
+
+使用8GPU通过如下命令一键式启动训练
+
+```bash
+python -m paddle.distributed.launch --log_dir=./fairmot_dla34_30e_1088x608_headtracking21/ --gpus 0,1,2,3,4,5,6,7 tools/train.py -c configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml
+```
+
+
+### 2. 评估
+
+使用单张GPU通过如下命令一键式启动评估
+
+```bash
+# 使用PaddleDetection发布的权重
+CUDA_VISIBLE_DEVICES=0 python tools/eval_mot.py -c configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml -o weights=https://paddledet.bj.bcebos.com/models/mot/fairmot_dla34_30e_1088x608_headtracking21.pdparams
+
+# 使用训练保存的checkpoint
+CUDA_VISIBLE_DEVICES=0 python tools/eval_mot.py -c configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml -o weights=output/fairmot_dla34_30e_1088x608_headtracking21/model_final.pdparams
+```
+
+
+### 3. 预测
+
+使用单个GPU通过如下命令预测一个视频,并保存为视频
+
+```bash
+# 预测一个视频
+CUDA_VISIBLE_DEVICES=0 python tools/infer_mot.py -c configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml -o weights=https://paddledet.bj.bcebos.com/models/mot/fairmot_dla34_30e_1088x608_headtracking21.pdparams --video_file={your video name}.mp4 --save_videos
+```
+**注意:**
+ 请先确保已经安装了[ffmpeg](https://ffmpeg.org/ffmpeg.html), Linux(Ubuntu)平台可以直接用以下命令安装:`apt-get update && apt-get install -y ffmpeg`。
+
+### 4. 导出预测模型
+
+```bash
+CUDA_VISIBLE_DEVICES=0 python tools/export_model.py -c configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml -o weights=https://paddledet.bj.bcebos.com/models/mot/fairmot_dla34_30e_1088x608_headtracking21.pdparams
+```
+
+### 5. 用导出的模型基于Python去预测
+
+```bash
+python deploy/python/mot_jde_infer.py --model_dir=output_inference/fairmot_dla34_30e_1088x608_headtracking21 --video_file={your video name}.mp4 --device=GPU --save_mot_txts
+```
+**注意:**
+ 跟踪模型是对视频进行预测,不支持单张图的预测,默认保存跟踪结果可视化后的视频,可添加`--save_mot_txts`表示保存跟踪结果的txt文件,或`--save_images`表示保存跟踪结果可视化图片。
+
+
+## 引用
+```
+@article{zhang2020fair,
+ title={FairMOT: On the Fairness of Detection and Re-Identification in Multiple Object Tracking},
+ author={Zhang, Yifu and Wang, Chunyu and Wang, Xinggang and Zeng, Wenjun and Liu, Wenyu},
+ journal={arXiv preprint arXiv:2004.01888},
+ year={2020}
+}
+@InProceedings{Sundararaman_2021_CVPR,
+ author = {Sundararaman, Ramana and De Almeida Braga, Cedric and Marchand, Eric and Pettre, Julien},
+ title = {Tracking Pedestrian Heads in Dense Crowd},
+ booktitle = {Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)},
+ month = {June},
+ year = {2021},
+ pages = {3865-3875}
+}
+```
diff --git a/configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml b/configs/mot/fairmot/headtracking21/fairmot_dla34_30e_1088x608_headtracking21.yml
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+_BASE_: [
+ '../fairmot_dla34_30e_1088x608.yml'
+]
+
+
+# for MOT training
+TrainDataset:
+ !MOTDataSet
+ dataset_dir: dataset/mot
+ image_lists: ['ht21.train']
+ data_fields: ['image', 'gt_bbox', 'gt_class', 'gt_ide']
+
+# for MOT evaluation
+# If you want to change the MOT evaluation dataset, please modify 'task' and 'data_root'
+EvalMOTDataset:
+ !MOTImageFolder
+ dataset_dir: dataset/mot
+ data_root: HT21/images/test
+ keep_ori_im: False # set True if save visualization images or video, or used in DeepSORT
+
+# for MOT video inference
+TestMOTDataset:
+ !MOTVideoDataset
+ dataset_dir: dataset/mot
+ keep_ori_im: True # set True if save visualization images or video
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