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A phoneme based sign language recognition system using skin color segmentation

机译:使用肤色分割的基于音素的手语识别系统

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A sign language is a language which, instead of acoustically conveyed sound patterns, uses visually transmitted sign patterns. Sign languages are commonly developed for deaf communities, which can include interpreters, friends and families of deaf people as well as people who are deaf or hard of hearing themselves. Developing a sign language recognition system will help the hearing impaired to communicate more fluently with the normal people. This paper presents a simple sign language recognition system that has been developed using skin color segmentation and Artificial Neural Network. The moment invariants features extracted from the right and left hand gesture images are used to develop a network model. The system has been implemented and tested for its validity. Experimental results show that the average recognition rate is 92.85%.
机译:手语是一种使用视觉传递的手语模式来代替声音传达的声音模式的语言。通常为聋人社区开发手语,其中包括口译员,聋人的朋友和家人,以及聋人或听力不佳的人。开发手语识别系统将帮助有听力障碍的人与普通人更流畅地交流。本文介绍了一个简单的手语识别系统,该系统已使用肤色分割和人工神经网络开发。从左右手的手势图像中提取的矩不变性特征可用于开发网络模型。该系统已实施并经过了有效性测试。实验结果表明,平均识别率为92.85%。

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