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SOTA
姿态估计
Pose Estimation On Crowdpose
Pose Estimation On Crowdpose
评估指标
AP
AP50
AP75
APM
Test
评测结果
各个模型在此基准测试上的表现结果
Columns
模型名称
AP
AP50
AP75
APM
Test
Paper Title
Repository
BUCTD-W48 (w/cond. input from PETR, and generative sampling)
78.5
-
-
-
-
Rethinking pose estimation in crowds: overcoming the detection information-bottleneck and ambiguity
ViTPose-G
78.3
85.3
81.4
86.6
-
ViTPose: Simple Vision Transformer Baselines for Human Pose Estimation
BUCTD-W48 (w/cond. input from PETR)
76.7
-
-
-
-
Rethinking pose estimation in crowds: overcoming the detection information-bottleneck and ambiguity
SwinV2-L 1K-MIM
75.5
-
-
-
-
Revealing the Dark Secrets of Masked Image Modeling
SwinV2-B 1K-MIM
74.9
-
-
-
-
Revealing the Dark Secrets of Masked Image Modeling
BUCTD-W48
72.9
-
-
-
-
Rethinking pose estimation in crowds: overcoming the detection information-bottleneck and ambiguity
OpenPifPaf
70.5
89.1
76.1
-
-
OpenPifPaf: Composite Fields for Semantic Keypoint Detection and Spatio-Temporal Association
MIPNet (HRNet-W48)
70.0
-
-
71.1
-
Multi-Instance Pose Networks: Rethinking Top-Down Pose Estimation
KAPAO-L
68.9
89.4
75.6
69.9
76.6
Rethinking Keypoint Representations: Modeling Keypoints and Poses as Objects for Multi-Person Human Pose Estimation
KAPAO-M
67.1
88.8
73.4
68.1
75.2
Rethinking Keypoint Representations: Modeling Keypoints and Poses as Objects for Multi-Person Human Pose Estimation
Hourglass-104
65.2
85.9
69.5
66.2
-
Greedy Offset-Guided Keypoint Grouping for Human Pose Estimation
KAPAO-S
63.8
87.7
69.4
64.8
72.1
Rethinking Keypoint Representations: Modeling Keypoints and Poses as Objects for Multi-Person Human Pose Estimation
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Pose Estimation On Crowdpose | SOTA | HyperAI超神经