使用深度图像流的符号识别

K. Fujimura, Xia Liu
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引用次数: 54

摘要

提出了一套从图像序列中提取基本形状信息的技术。提出的方法是(i)人体检测,(ii)人体部位检测和(iii)手部形状分析,所有这些方法都基于深度图像流。特别是日本手语(JSL)中具有代表性的手型类型的非侵入性识别,识别率高。利用主动传感硬件以视频速率捕获深度图像流,构建了一个可识别100多个单词的JSL识别实验系统。实验结果验证了该方法的有效性,并讨论了该方法的特点
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sign recognition using depth image streams
A set of techniques is presented for extracting essential shape information from image sequences. Presented methods are (i) human detection, (ii) human body parts detection, and (iii) hand shape analysis, all based on depth image streams. In particular, representative types of hand shapes used in Japanese sign language (JSL) are recognized in a non-intrusive manner with a high recognition rate. An experimental JSL recognition system is built that can recognize over 100 words by using an active sensing hardware to capture a stream of depth images at a video rate. Experimental results are shown to validate our approach and characteristics of our approach are discussed
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