基于高性能计算的手势识别动态时间翘曲实现

M. Salagar, P. Kulkarni, S. Gondane
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引用次数: 1

摘要

美国手语是许多聋哑人的主要语言。美国手语是一种复杂的语言,它通过手部动作做出的手势,结合面部表情和身体表情的姿势来传达语言信息。设计的手语识别系统适用于美国手语中的手势。Kinect作为图像捕捉设备,也符合低成本的要求。对Kinect捕捉到的用户关节的人体骨骼数据进行分析。视频是运行时处理的标志。如果在库中预定义了手势,则将其转录为单词或短语,并以语音和文本的形式输出。所实现的系统工作精度高。系统并行实现后,准确率达到95.6%。这个识别器可以作为想要学习手语的人的导师,也可以作为聋哑人的翻译,使他们能够有效地与大家交流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implementation of dynamic time warping for gesture recognition in sign language using high performance computing
ASL (American Sign Language) is the primary language of many who are deaf. ASL is a complex language that employs signs made by moving the hands combined with facial expressions and postures of the body expression to convey linguistic information. Designed system for sign language recognizer works for gestures in ASL. Kinect is used as image capture device and fits the low-cost requirement as well. Human skeleton data of the joints of a user captured by the Kinect are analyzed. Video is runtime processed for signs. If gesture is predefined in the library, it is transcribed to word or phrase, and output is presented as voice and text. The implemented system works with excellent accuracy. After parallel implementation for system it achieves 95.6% in accuracy. This recognizer can be used as tutor for those who want to learn Sign language as well as translator for Deaf people so that they can communicate efficiently with everyone.
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