Vision-based hand posture detection and recognition for Sign Language — A study

S. Bilal, Rini Akmeliawati, M. Salami, A. Shafie
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引用次数: 44

Abstract

Unlike general gestures, Sign Languages (SLs) are highly structured so that it provides an appealing test bed for understanding more general principles for hand shape, location and motion trajectory. Hand posture shape in other words static gestures detection and recognition is crucial in SLs and plays an important role within the duration of the motion trajectory. Vision-based hand shape recognition can be accomplished using three approaches 3D hand modelling, appearance-based methods and hand shape analysis. In this survey paper, we show that extracting features from hand shape is so essential during recognition stage for applications such as SL translators.
基于视觉的手势姿态检测与识别研究
与一般手势不同,手语(SLs)是高度结构化的,因此它为理解手的形状、位置和运动轨迹的更一般原则提供了一个有吸引力的测试平台。手部姿势形状即静态手势的检测和识别在语言语言中是至关重要的,在运动轨迹的持续时间内起着重要作用。基于视觉的手型识别可以通过三维手型建模、基于外观的方法和手型分析三种方法来实现。在这篇调查论文中,我们证明了在识别阶段,从手部形状中提取特征对于SL翻译等应用是至关重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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