基于区间模糊规则的手势识别

B. Bedregal, G. Dimuro, Antônio R. Costa
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引用次数: 24

摘要

介绍了一种基于区间模糊规则的数据手套手势识别方法,并将其应用于巴西手语手势识别。为了处理数据手套提供的数据中的不确定性,采用了一种基于区间模糊逻辑的方法。该方法利用手指关节角度集和手指间距集进行手部形态分类,利用手势片段分类进行手势识别。手势的分割基于单调手势片段的概念,即手指关节角度变化具有相同符号(不增加或不减少)的手部构型序列,由标记序列拐点的参考构型分开。每个手势都有它的单调片段列表。给定一组手势的所有片段列表的集合决定了一组能够识别这些手势的有限自动机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interval Fuzzy Rule-Based Hand Gesture Recognition
This paper introduces an interval fuzzy rule-based method for the recognition of hand gestures acquired from a data glove, with an application to the recognition of hand gestures of the Brazilian Sign Language. To deal with the uncertainties in the data provided by the data glove, an approach based on interval fuzzy logic is used. The method uses the set of angles of finger joints and of separation between finger for the classification of hand configurations, and classifications of segments of hand gestures for recognizing gestures. The segmentation of gestures is based on the concept of monotonic gesture segment, sequences of hand configurations in which the variations of the angles of the finger joints have the same sign (non-increasing or non-decreasing), separated by reference configurations that mark the inflexion points in the sequence. Each gesture is characterized by its list of monotonic segments. The set of all lists of segments of a given set of gestures determines a set of finite automata able to recognize such gestures.
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