Recognition Method with Deep Contrastive Learning and Improved Transformer for 3D Human Motion Pose
Datian Liu,
Haitao Yang,
Zhang Lei
Abstract:Three-dimensional (3D) human pose recognition techniques based on spatial data have gained attention. However, existing models and algorithms fail to achieve desired precision. We propose a 3D human motion pose recognition method using deep contrastive learning and an improved Transformer. The improved Transformer removes noise between human motion RGB and depth images, addressing orientation correlation in 3D models. Two-dimensional (2D) pose features are extracted from de-noised RGB images using a kernel gen… Show more
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