Propagation from conservatively selected skin pixels using a multi-step multi-feature method

M. Mahmoodi, S. Sayedi, Fariba Karimi
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引用次数: 3

Abstract

Recently, skin detection has been employed in multifarious applications of computer vision including face detection. This is mainly due to the appealing characteristics of skin color and its potency to discriminate objects and pixels. However, there are certain challenges involved in utilizing human complexion as a feature to detect faces, and they have led to the inefficiency of many methods. In order to counteract these factors, in this paper, a skin segmentation method which exploits a multi step diffusion algorithm to detect skin regions is presented. The method starts with conservative extraction of skin seeds in each frame which is accomplished by using fusion of ternary-based human motion detection, modified Bayesian classifier, and a feedback mechanism. Subsequently, these candidate skin pixels are utilized in a 2-stage diffusion scheme to detect other skin pixels. Both quantitative and qualitative results demonstrate the effectiveness of the proposed system in compare with other works.
使用多步骤多特征方法从保守选择的皮肤像素进行传播
近年来,皮肤检测已被应用于计算机视觉的各种应用中,包括人脸检测。这主要是由于皮肤颜色的吸引人的特性及其区分物体和像素的能力。然而,利用人类肤色作为特征来检测人脸存在一定的挑战,这导致了许多方法的低效率。为了抵消这些因素,本文提出了一种利用多步扩散算法检测皮肤区域的皮肤分割方法。该方法从每帧皮肤种子的保守提取开始,融合基于三元的人体运动检测、改进贝叶斯分类器和反馈机制来完成皮肤种子的保守提取。随后,这些候选皮肤像素在两阶段扩散方案中被利用来检测其他皮肤像素。定量和定性结果均证明了该系统与其他工作的有效性。
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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