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Vision-based approach for American Sign Language recognition using Edge Orientation Histogram

机译:基于视觉的美国手语识别方法使用边缘方向直方图

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Hand Gesture Recognition System (HGRS) for detection of American Sign Language (ASL) alphabets has become essential tool for specific end users (i.e. hearing and speech impaired) to interact with general users via computer system. ASL has been proved to be a powerful and conventional augmentative communication tool especially for specific users. ASL consists of 26 primary letters, of which 5 are vowels and 21 are consonants. Proposed Real-time static Alphabet American Sign Language Recognizer- (A-ASLR) is designed for the recognition of ASL alphabets into their translated version in text (i.e. A to Z). The architecture of A-ASLR system is fragmented into six consequent phases namely; image capturing, image pre-processing, region extraction, feature extraction, feature matching and pattern recognition. We have used Edge Orientation Histogram (EOH) in A-ASLR system. The system is developed for detection of ASL alphabets based on Vision-based approach. It works without using colored gloves or expensive sensory gloves on hand. Our A-ASLR system achieves the recognition rate of 88.26% within recognition time of 0.5 second in complex background with mixed lightning condition.
机译:用于检测美国手语(ASL)字母的手势识别系统(HGRS)已成为特定最终用户的基本工具(即听力和语音受损),通过计算机系统与一般用户互动。 ASL已被证明是一个强大而传统的增强通信工具,尤其是特定用户。 ASL由26个主要字母组成,其中5个是元音,21个是辅音。提出的实时静态字母美国标志语言识别器 - (A-ASLR)被设计用于在文本中识别其翻译版本的ASL字母表(即A到Z)。 A-ASLR系统的架构将六个阶段分段为六个相位;图像捕获,图像预处理,区域提取,特征提取,特征匹配和模式识别。我们在A-ASLR系统中使用了边缘方向直方图(EOH)。基于基于视觉的方法,开发了该系统以检测ASL字母表。它有效而不使用彩色手套或昂贵的感觉手套。我们的A-ASLR系统在复杂背景中的识别时间内实现了88.26%的识别率为88.26%,在复杂的背景下,具有混合避雷条件。

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