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홈
SOTA
3D Multi Person Pose Estimation
3D Multi Person Pose Estimation On Campus
3D Multi Person Pose Estimation On Campus
평가 지표
Mean mAP
PCP3D
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
Mean mAP
PCP3D
Paper Title
Repository
VTP
80.1
96.3
VTP: Volumetric Transformer for Multi-view Multi-person 3D Pose Estimation
-
TesseTrack
-
97.4
TesseTrack: End-to-End Learnable Multi-Person Articulated 3D Pose Tracking
-
PlaneSweepPose
-
97
Multi-View Multi-Person 3D Pose Estimation with Plane Sweep Stereo
Ershadi-Nasab model
-
90.6
Multiple human 3d pose estimation from multiview images
-
MvP
-
96.6
Direct Multi-view Multi-person 3D Pose Estimation
MVPose
-
96.3
Fast and Robust Multi-Person 3D Pose Estimation from Multiple Views
Faster VoxelPose
-
96.9
Faster VoxelPose: Real-time 3D Human Pose Estimation by Orthographic Projection
VoxelTrack
-
96.7
VoxelTrack: Multi-Person 3D Human Pose Estimation and Tracking in the Wild
-
Belagiannis model v.3
-
84.5
3D Pictorial Structures Revisited: Multiple Human Pose Estimation
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Belagiannis model v.2
-
78
Multiple human pose estimation with temporally consistent 3d pictorial structures
-
SmartEdgeSensor
-
97
Real-Time Multi-View 3D Human Pose Estimation using Semantic Feedback to Smart Edge Sensors
Part-aware Pose
-
96.79
Part-Aware Measurement for Robust Multi-View Multi-Human 3D Pose Estimation and Tracking
VoxelPose
-
96.7
VoxelPose: Towards Multi-Camera 3D Human Pose Estimation in Wild Environment
UMMT
-
97.0
A Unified Multi-view Multi-person Tracking Framework
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Cross-View
-
96.6
Cross-View Tracking for Multi-Human 3D Pose Estimation at over 100 FPS
crossview_3d_pose_tracking
-
96.6
Cross-View Tracking for Multi-Human 3D Pose Estimation at over 100 FPS
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