Human segmentation algorithm for real-time video-call applications

Seon Heo, H. Koo, Hong Il Kim, N. Cho
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引用次数: 3

Abstract

This paper presents a human region segmentation algorithm for real-time video-call applications. Unlike conventional methods, the segmentation process is automatically initialized and the motion of cameras is not restricted. To be precise, our method is initialized by face detection results and human/background regions are modeled with spatial color Gaussian mixture models (SCGMMs). Based on the SCGMMs, we build a cost function considering spatial and color distributions of pixels, region smoothness, and temporal coherence. Here, the temporal coherence term allows us to have stable segmentation results. The cost function is minimized by the well-known graphcut algorithm and we update our SCGMM models with the segmentation results. Experimental results have shown that our method yields stable segmentation results with a small amount of computation load.
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实时视频通话应用的人工分割算法
提出了一种用于实时视频通话的人体区域分割算法。与传统方法不同,分割过程是自动初始化的,并且相机的运动不受限制。准确地说,我们的方法是通过人脸检测结果初始化,并使用空间颜色高斯混合模型(SCGMMs)对人/背景区域进行建模。基于SCGMMs,我们构建了一个考虑像素空间和颜色分布、区域平滑性和时间相干性的代价函数。在这里,时间相干项允许我们有稳定的分割结果。通过众所周知的图割算法最小化代价函数,并使用分割结果更新我们的SCGMM模型。实验结果表明,该方法的分割结果稳定,计算量小。
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