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Facial Phoneme Extraction for Taiwanese Sign Language Recognition

机译:提取台湾手语的面部音素

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摘要

We have developed a system that recognizes the facial expressions in Taiwanese Sign Language (TSL) using a phoneme-based strategy. A facial expression is decomposed into three facial phonemes of eyebrow, eye, and mouth. A fast method is proposed for locating facial phonemes. The shapes of the phonemes were then matched by the deformable template method, giving feature points representing the corresponding phonemes. The trajectories of the feature points were tracked along the video image sequence and combined to recognize the type of facial expression. The tracking techniques and the feature points have been tailored for facial features in TSL. For example, the template matching methods have been simplified for tracking eyebrows and eyes. The mouth was tracked using the optical flow method, taking lips as homogeneous patches. The experiment has been conducted on 70 image sequences covering seven facial expressions. The average recognition rate is 83.3%.
机译:我们开发了一种系统,该系统使用基于音素的策略识别台湾手语(TSL)中的面部表情。面部表情被分解为眉,眼和嘴三个面部音素。提出了一种快速定位面部音素的方法。然后,通过变形模板方法对音素的形状进行匹配,以给出代表相应音素的特征点。沿着视频图像序列跟踪特征点的轨迹,并进行组合以识别面部表情的类型。跟踪技术和特征点已针对TSL中的面部特征进行了量身定制。例如,已简化了模板匹配方法以跟踪眉毛和眼睛。使用光流法跟踪嘴巴,将嘴唇作为均质斑块。实验已针对涵盖七个面部表情的70个图像序列进行。平均识别率为83.3%。

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