首页> 外文会议>Evolutionary Computation (CEC), 2012 IEEE Congress on >Robust fingertip extraction with improved skin color segmentation for finger gesture recognition in Human-robot interaction
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Robust fingertip extraction with improved skin color segmentation for finger gesture recognition in Human-robot interaction

机译:可靠的指尖提取和改进的肤色分割,可在人机交互中识别手指手势

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摘要

This paper presents an efficient approach to solve the problem of real-time robust hand segmentation and fingertip extraction for finger gesture recognition in Human-robot interaction (HRI). Firstly, we propose an improved cascade filtering based hand region candidate estimation by the combination of YCbCr skin color probability image based segmentation with genetic algorithm and post-processing with morphological operation and blob analysis in blurred, low-resolution images. Using the segmented hand candidate regions, we estimate the hand region center and fingertip position from distance transform and geometrical feature of hand. From the hand orientation and hand/palm center, we find the optimal each fingertip position and its orientation. Experimental results show that the proposed algorithm not only rapidly detects the hand regions under various illumination conditions, but also it efficiently extracts the finger information with size and rotation invariance.
机译:本文提出了一种有效的方法来解决人机交互(HRI)中用于手指手势识别的实时鲁棒手分割和指尖提取问题。首先,我们提出了一种改进的基于级联滤波的手部区域候选估计方法,该方法将基于YCbCr肤色概率图像的分割与遗传算法相结合,并在模糊,低分辨率图像中结合形态学运算和斑点分析进行后处理。使用分割的手候选区域,我们从距离变换和手的几何特征估计手区域中心和指尖位置。从手的方向和手/手掌中心,我们找到最佳的每个指尖位置及其方向。实验结果表明,该算法不仅能够快速检测出各种光照条件下的手部区域,而且能够有效地提取出大小和旋转不变的手指信息。

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