复杂背景下基于形状和纹理证据的手势识别

D. Vishwakarma
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引用次数: 7

摘要

手势识别系统是对给定手势的手部部分进行分类的过程。本文提出了一种从NUS手势数据集中提取的11种不同的静态手势中识别手势的技术。复杂背景下的手势检测被认为是一项具有挑战性的任务。本文的目的是研究和开发一种在复杂背景下对手势进行有效检测和分类的方法。采用皮肤相似度方法检测复杂背景手势图像中的手。整个图像分为两类,一类是手,另一类是背景。随后,从手势中提取形状和纹理特征,构成手势识别的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hand gesture recognition using shape and texture evidences in complex background
Hand Gesture recognition system is a process involving classifying the given gesture of the hand portion. This paper presents a technique for the recognition of hand gesture from the 11 different static gestures taken from NUS hand posture dataset. Hand gesture detection in the complex background is seen as a challenging task. The purpose of this paper is to study and develop a method for the efficient detection and classification of hand gestures in the complex background. Skin similarity measure is used to detect the hand in complex background hand gesture image. The whole of the image is divided into two classes one is hand, and other is background. Subsequently, shape and texture features are extracted from the gestures which form the basis of recognition of the hand gesture.
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