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A Real-Time Large Vocabulary Recognition System for Chinese Sign Language

机译:中文手语实时大词汇识别系统

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摘要

The major challenge that faces Sign Language recognition now is to develop methods that will scale well with increasing vocabulary size. In this paper, a real-time system designed for recognizing Chinese Sign Language (CSL) signs with a 5100 sign vocabulary is presented. The raw data are collected from two CyberGlove and a 3-D tracker. An algorithm based on geometrical analysis for purpose of extracting invariant feature to signer position is proposed. Then the worked data are presented as input to Hidden Markov Models (HMMs) for recognition. To improve recognition performance, some useful new ideas are proposed in design and implementation, including modifying the transferring probability, clustering the Gaussians and fast matching algorithm. Experiments show that techniques proposed in this paper are efficient on either recognition speed or recognition performance.
机译:现在,手语识别面临的主要挑战是开发能够随着词汇量的增加而扩展的方法。本文提出了一种实时系统,用于识别带有5100手语词汇的中国手语(CSL)手语。原始数据是从两个Cyber​​Glove和一个3-D跟踪器收集的。提出了一种基于几何分析的签名者位置不变特征提取算法。然后,将工作数据作为输入提供给隐马尔可夫模型(HMM)进行识别。为了提高识别性能,在设计和实现中提出了一些有用的新思路,包括修改传递概率,对高斯聚类和快速匹配算法。实验表明,本文提出的技术在识别速度或识别性能上都是有效的。

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