单目视频手势的实时估计

Yi Wang, Haojie Li, Juncheng Liu, Xin Fan, Yunzhen Wu
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引用次数: 0

摘要

基于LLP (Locality Preserving Projections,局域保留投影)从单目视频中学习到的“多视点连续运动”流形,提出了一种能够有效恢复手部固有构型和视点的通用框架。首先,通过3D-2D映射表离线关联多视点手势关节角度及其2D投影轮廓的三维信息;然后,提出了一种基于lpp的滤波算法(LPP-FA),该算法将多运动识别和重建问题转化为嵌入空间之间的分类问题,以及嵌入空间内的接近性查询和预测问题。最后,提出了一种改进的多手势跟踪方法,该方法将肤色线索与定向k-Dop(ODop)相结合,鲁棒高效地实现了手部构型和视点的准确估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-Time Estimation of Hands Gestures from Monocular Video
This paper presents a general framework that can efficiently recover intrinsic hand configurations and viewpoints based on "multi-view and continuous motion" manifold learnt by LLP (Locality Preserving Projections) from monocular video. Firstly, 3D information of joint angels for a gesture with its 2D projecting silhouettes from multi-viewpoints is related via a 3D-2D mapping table offline. Then, a LPP-based filtering algorithm (LPP-FA) is presented which converts the multiple motion recognition and reconstruction problems to classification issue among embedding spaces, and proximity query and prediction process within embedding spaces. Finally, with an improved multiple gestures tracking method that combines skin color cues with oriented k-Dop(ODop), the proposed method achieves the accurate estimation of configurations and viewpoints of hands robustly and efficiently.
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