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Multiple Hypothesis Tracking with Sign Language Hand Motion Constraints

机译:使用手语手动约束的多个假设跟踪

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In this paper, we propose to incorporate prior knowledge from sign language linguistic models about the motion of the hands within a multiple hypothesis tracking framework. A critical component for automated visual sign language recognition is the tracking of the signer's hands, especially when faced with frequent and persistent occlusions and complex hand interactions. Hand motion constraints identified by sign language phonological models, such as the hand symmetry condition, are used as part of the data association process. Initial experimental results show the validity of the proposed approach.
机译:在本文中,我们建议将关于手中的手语语言模型的先前知识纳入多个假设跟踪框架内的手中的运动。自动视觉标志语言识别的关键组件是跟踪签名者的手,特别是当面对频繁和持续的闭塞和复杂的手交互时。手动运动限制由偶然语言语音模型(如手对称条件)用作数据关联过程的一部分。初始实验结果表明了所提出的方法的有效性。

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