DJW cdece0b32a 第一次提交 | 10 mesi fa | |
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300w | 10 mesi fa | |
aflw | 10 mesi fa | |
coco_wholebody_face | 10 mesi fa | |
cofw | 10 mesi fa | |
wflw | 10 mesi fa | |
README.md | 10 mesi fa |
Top-down methods divide the task into two stages: object detection, followed by single-object pose estimation given object bounding boxes. Instead of estimating keypoint coordinates directly, the pose estimator will produce heatmaps which represent the likelihood of being a keypoint, following the paradigm introduced in Simple Baselines for Human Pose Estimation and Tracking.
Results on 300W dataset
Model | Input Size | NMEcommon | NMEchallenge | NMEfull | NMEtest | Details and Download |
---|---|---|---|---|---|---|
HRNetv2-w18 | 256x256 | 2.92 | 5.64 | 3.45 | 4.10 | hrnetv2_300w.md |
Results on AFLW dataset
Model | Input Size | NMEfull | NMEfrontal | Details and Download |
---|---|---|---|---|
HRNetv2-w18+Dark | 256x256 | 1.35 | 1.19 | hrnetv2_dark_aflw.md |
HRNetv2-w18 | 256x256 | 1.41 | 1.27 | hrnetv2_aflw.md |
Results on COCO-WholeBody-Face val set
Model | Input Size | NME | Details and Download |
---|---|---|---|
HRNetv2-w18+Dark | 256x256 | 0.0513 | hrnetv2_dark_coco_wholebody_face.md |
SCNet-50 | 256x256 | 0.0567 | scnet_coco_wholebody_face.md |
HRNetv2-w18 | 256x256 | 0.0569 | hrnetv2_coco_wholebody_face.md |
ResNet-50 | 256x256 | 0.0582 | resnet_coco_wholebody_face.md |
HourglassNet | 256x256 | 0.0587 | hourglass_coco_wholebody_face.md |
MobileNet-v2 | 256x256 | 0.0611 | mobilenetv2_coco_wholebody_face.md |
Results on COFW dataset
Model | Input Size | NME | Details and Download |
---|---|---|---|
HRNetv2-w18 | 256x256 | 3.48 | hrnetv2_cofw.md |
Results on WFLW dataset
Model | Input Size | NMEtest | NMEpose | NMEillumination | NMEocclusion | NMEblur | NMEmakeup | NMEexpression | Details and Download |
---|---|---|---|---|---|---|---|---|---|
HRNetv2-w18+Dark | 256x256 | 3.98 | 6.98 | 3.96 | 4.78 | 4.56 | 3.89 | 4.29 | hrnetv2_dark_wflw.md |
HRNetv2-w18+AWing | 256x256 | 4.02 | 6.94 | 3.97 | 4.78 | 4.59 | 3.87 | 4.28 | hrnetv2_awing_wflw.md |
HRNetv2-w18 | 256x256 | 4.06 | 6.97 | 3.99 | 4.83 | 4.58 | 3.94 | 4.33 | hrnetv2_wflw.md |