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Facial Expression Sequence Recognition for a Japanese Sign Language Training System

机译:日语手语训练系统的面部表情序列识别

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摘要

Considerable research has been conducted in the past on techniques for analyzing facial expressions. Many researchers have employed general analytical methods using whole-face data; however, significant results focusing on sign language have not been obtained. Because facial expressions are very important in sign language, it is crucial that they are accurately captured in sign language training systems. Our research investigates a facial expression discrimination method specialized for a Japanese sign language training system. First, this system acquires a teacher's sign language and facial expressions and automatically adjusts the system parameters. The system then acquires the shape of the learner's face and extracts it in sections via machine learning. Finally, the sections and the degree to which they have changed are integrated by fuzzy inference and judged as a facial expression. By referring to the system's facial expression judgment, the learner can better understand the type and degree of facial expression necessary for proper sign language. Experiment conducted on eight subjects using this system was able to verify the validity of sign language expressions performed by learners with approximately 90.7% accuracy. It is expected that this system can be used for facial expression training in specific applications.
机译:过去已经对面部表情分析技术进行了大量研究。许多研究人员已使用全脸数据采用了一般的分析方法。但是,尚未获得针对手语的重要结果。由于面部表情在手语中非常重要,因此在手语训练系统中准确捕获面部表情至关重要。我们的研究调查专门针对日语手语训练系统的面部表情识别方法。首先,该系统获取教师的手语和面部表情,并自动调整系统参数。然后,系统获取学习者的脸部形状,并通过机器学习将其提取出来。最后,通过模糊推理将各个部分及其更改的程度进行整合,并判断为面部表情。通过参考系统的面部表情判断,学习者可以更好地理解正确手语所必需的面部表情的类型和程度。使用该系统对八名受试者进行的实验能够验证学习者所执行手语表达的有效性,准确度约为90.7%。期望该系统可以用于特定应用中的面部表情训练。

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