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Research on recognition and application of hand gesture based on skin color and SVM

机译:基于肤色和SVM的手势识别与应用研究

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Aiming at the problem that hand gesture recognition difficult issues in the real scene, a method of hand gesture recognition that combines skin color with SVM was proposed. The skin color area was separated by Otsu adaptive threshold algorithm in the YCbCr color space, and hand gesture was segmented by hand gesture area criterion. Hu moment features and finger number were extracted on the hand gesture contour as the feature vector. Six common static gestures were classified and recognized by SVM classifier. Experimental result showed that this method had good stability and real-time performance, average recognition rate could reach 94%. On the hand gesture recognition application, the hand gesture recognition results were converted into instructions, which achieved the real-time controlled simulation of the NAO robot in Webots simulation environment, and verified the feasibility of hand gesture recognition algorithm.
机译:旨在解决现场手势识别困难问题的问题,提出了一种手势识别方法,其将肤色与SVM结合起来。通过YCBCR颜色空间中的Otsu自适应阈值算法分离皮肤彩色区域,手势通过手势区域标准进行分割。在手势轮廓上提取HU时刻特征和指数作为特征向量。 SVM分类器分类和识别六个常见的静态手势。实验结果表明,该方法具有良好的稳定性和实时性能,平均识别率可达到94%。在手势识别应用中,手势识别结果被转换为指令,该指令中实现了NAO机器人的实时控制模拟,并验证了手势识别算法的可行性。

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