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/content/drive/My Drive/AlphaTracker/Tracking/AlphaTracker
Frame will be saved in /gdrive/result_folder/oriFrameFromVideo//trainvideo1/frame_folder/
extracting frames from video...
processing /gdrive/Sample_Data/trainvideo1.mp4
100% 1814/1814 [03:35<00:00, 8.41it/s]
getting demo image:
CUDA_VISIBLE_DEVICES='0' python3 demo.py
--nClasses 4
--indir /gdrive/result_folder/oriFrameFromVideo//trainvideo1/frame_folder/
--outdir /gdrive/result_folder
--yolo_model_path /gdrive/AlphaTracker/Tracking/AlphaTracker/train_yolo/darknet//backup/demo/yolov3-mice_final.weights
--yolo_model_cfg /gdrive/AlphaTracker/Tracking/AlphaTracker/train_yolo/darknet//cfg/yolov3-mice.cfg
--pose_model_path /gdrive/AlphaTracker/Tracking/AlphaTracker/train_sppe/exp/coco/demo/model_10.pkl
--use_boxGT 0
Loading YOLO model..
not using ground truth box to do the eval.
Loading pose model from /gdrive/AlphaTracker/Tracking/AlphaTracker/train_sppe/exp/coco/demo/model_10.pkl
0% 0/1814 [00:00<?, ?it/s]/usr/local/lib/python3.8/site-packages/torch/nn/functional.py:718: UserWarning: Named tensors and all their associated APIs are an experimental feature and subject to change. Please do not use them for anything important until they are released as stable. (Triggered internally at /opt/conda/conda-bld/pytorch_1623448278899/work/c10/core/TensorImpl.h:1156.)
return torch.max_pool2d(input, kernel_size, stride, padding, dilation, ceil_mode)
100% 1814/1814 [02:14<00:00, 13.45it/s]
===========================> Finish Model Running.
Thank you for your interest in AlphaTracker!
Are you attempting to track on the demo video we provided or a different video?
Could you first verify that the tracking works on our sample demo video: https://drive.google.com/file/d/1N0JjazqW6JmBheLrn6RoDTSRXSPp1t4K
I am facing the same error on my own annotated data. I have tried on your sample data and sample video, it worked.
However, when I annotated your frames for mice data using Annotation tool. I am receiving same error in Tracking.
Please, guide what I am doing wrong?
I think this issue could be caused by not labeling all the body points expected. For example, say you set the number of body parts to 4. You must annotate 4 body points for both mice in sloth. You cannot have only 3 body point annotations in the json for that image.
/content/drive/My Drive/AlphaTracker/Tracking/AlphaTracker
Frame will be saved in /gdrive/result_folder/oriFrameFromVideo//trainvideo1/frame_folder/
extracting frames from video...
processing /gdrive/Sample_Data/trainvideo1.mp4
100% 1814/1814 [03:35<00:00, 8.41it/s]
getting demo image:
CUDA_VISIBLE_DEVICES='0' python3 demo.py
--nClasses 4
--indir /gdrive/result_folder/oriFrameFromVideo//trainvideo1/frame_folder/
--outdir /gdrive/result_folder
--yolo_model_path /gdrive/AlphaTracker/Tracking/AlphaTracker/train_yolo/darknet//backup/demo/yolov3-mice_final.weights
--yolo_model_cfg /gdrive/AlphaTracker/Tracking/AlphaTracker/train_yolo/darknet//cfg/yolov3-mice.cfg
--pose_model_path /gdrive/AlphaTracker/Tracking/AlphaTracker/train_sppe/exp/coco/demo/model_10.pkl
--use_boxGT 0
Loading YOLO model..
not using ground truth box to do the eval.
Loading pose model from /gdrive/AlphaTracker/Tracking/AlphaTracker/train_sppe/exp/coco/demo/model_10.pkl
0% 0/1814 [00:00<?, ?it/s]/usr/local/lib/python3.8/site-packages/torch/nn/functional.py:718: UserWarning: Named tensors and all their associated APIs are an experimental feature and subject to change. Please do not use them for anything important until they are released as stable. (Triggered internally at /opt/conda/conda-bld/pytorch_1623448278899/work/c10/core/TensorImpl.h:1156.)
return torch.max_pool2d(input, kernel_size, stride, padding, dilation, ceil_mode)
100% 1814/1814 [02:14<00:00, 13.45it/s]
===========================> Finish Model Running.
Tracking pose:
python ./PoseFlow/tracker-general-fixNum-newSelect-noOrb.py
--imgdir /gdrive/result_folder/oriFrameFromVideo//trainvideo1/frame_folder/
--in_json /gdrive/result_folder/alphapose-results.json
--out_json /gdrive/result_folder/alphapose-results-forvis-tracked.json
--visdir /gdrive/result_folder/pose_track_vis/ --vis 1
--image_format %s.png --max_pid_id_setting 2 --match 0 --weights 0 6 0 0 0 0
--out_video_path /gdrive/result_folder/demo_2_0_060000.mp4
Start loading json file...
remove extract persons...
100% 26/26 [00:00<00:00, 773417.76it/s]
0% 0/26 [00:00<?, ?it/s]
Traceback (most recent call last):
File "./PoseFlow/tracker-general-fixNum-newSelect-noOrb.py", line 247, in
track[img_name][bid+1]['box_pos'] = [ int(notrack[img_name][bid]['box'][0]),
ValueError: cannot convert float NaN to integer
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