update pretrained model
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357a747491
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2 changed files with 15 additions and 13 deletions
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@ -28,7 +28,7 @@ Will be released later.
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## Pretrained model and baseline models
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Darknet-53 ImageNet pretrained: [[DarkNet Official]](https://pjreddie.com/media/files/darknet53.conv.74)
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JDE uncertainty-weighted: [[Google Drive]]()(Coming soon) [[Baidu NetDisk]](https://pan.baidu.com/s/1Ifgn0Y_JZE65_qSrQM2l-Q)
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JDE-1088x608-uncertainty: [[Google Drive]]()(Coming soon) [[Baidu NetDisk]](https://pan.baidu.com/s/1Ifgn0Y_JZE65_qSrQM2l-Q)
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## Test on MOT-16 Challenge
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## Training
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24
track.py
24
track.py
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@ -74,7 +74,7 @@ def eval_seq(opt, dataloader, data_type, result_filename, save_dir=None, show_im
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frame_id += 1
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# save results
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write_results(result_filename, results, data_type)
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return frame_id
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return frame_id, timer.average_time, timer.calls
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def main(opt, data_root='/data/MOT16/train', det_root=None, seqs=('MOT16-05',), exp_name='demo',
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@ -85,10 +85,9 @@ def main(opt, data_root='/data/MOT16/train', det_root=None, seqs=('MOT16-05',),
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data_type = 'mot'
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# run tracking
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timer = Timer()
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accs = []
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n_frame = 0
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timer.tic()
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timer_avgs, timer_calls = [], []
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for seq in seqs:
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output_dir = os.path.join(data_root, '..','outputs', exp_name, seq) if save_images or save_videos else None
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@ -97,8 +96,11 @@ def main(opt, data_root='/data/MOT16/train', det_root=None, seqs=('MOT16-05',),
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result_filename = os.path.join(result_root, '{}.txt'.format(seq))
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meta_info = open(os.path.join(data_root, seq, 'seqinfo.ini')).read()
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frame_rate = int(meta_info[meta_info.find('frameRate')+10:meta_info.find('\nseqLength')])
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n_frame += eval_seq(opt, dataloader, data_type, result_filename,
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nf, ta, tc = eval_seq(opt, dataloader, data_type, result_filename,
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save_dir=output_dir, show_image=show_image, frame_rate=frame_rate)
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n_frame += nf
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timer_avgs.append(ta)
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timer_calls.append(tc)
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# eval
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logger.info('Evaluate seq: {}'.format(seq))
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@ -108,11 +110,13 @@ def main(opt, data_root='/data/MOT16/train', det_root=None, seqs=('MOT16-05',),
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output_video_path = osp.join(output_dir, '{}.mp4'.format(seq))
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cmd_str = 'ffmpeg -f image2 -i {}/%05d.jpg -c:v copy {}'.format(output_dir, output_video_path)
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os.system(cmd_str)
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timer.toc()
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logger.info('Time elapsed: {}, FPS {}'.format(timer.average_time, n_frame / timer.average_time))
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timer_avgs = np.asarray(timer_avgs)
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timer_calls = np.asarray(timer_calls)
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all_time = np.dot(timer_avgs, timer_calls)
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avg_time = all_time / np.sum(timer_calls)
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logger.info('Time elapsed: {:.2f} seconds, FPS: {:.2f}'.format(all_time, 1.0 / avg_time))
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# get summary
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# metrics = ['mota', 'num_switches', 'idp', 'idr', 'idf1', 'precision', 'recall']
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metrics = mm.metrics.motchallenge_metrics
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mh = mm.metrics.create()
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summary = Evaluator.get_summary(accs, seqs, metrics)
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@ -143,10 +147,6 @@ if __name__ == '__main__':
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print(opt, end='\n\n')
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if not opt.test_mot16:
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seqs_str = '''CVPR19-01
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CVPR19-02
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CVPR19-03
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CVPR19-05'''
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seqs_str = '''KITTI-13
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KITTI-17
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ADL-Rundle-6
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@ -162,6 +162,8 @@ if __name__ == '__main__':
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MOT16-08
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MOT16-12
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MOT16-14'''
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seqs_str = '''MOT16-01
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MOT16-07'''
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data_root = '/home/wangzd/datasets/MOT/MOT16/test'
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seqs = [seq.strip() for seq in seqs_str.split()]
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