作者
Thad Starner, Alex Pentland
发表日期
1995/11/21
研讨会论文
Proceedings of International Symposium on Computer Vision-ISCV
页码范围
265-270
出版商
IEEE
简介
Hidden Markov models (HMMs) have been used prominently and successfully in speech recognition and, more recently, in handwriting recognition. Consequently, they seem ideal for visual recognition of complex, structured hand gestures such as are found in sign language. We describe a real-time HMM-based system for recognizing sentence level American Sign Language (ASL) which attains a word accuracy of 99.2% without explicitly modeling the fingers.
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