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Image segmentation using spatial-color Gaussian mixture models

机译:使用空间颜色高斯混合模型的图像分割

摘要

A spatial-color Gaussian mixture model (SCGMM) image segmentation technique for segmenting images. The SCGMM image segmentation technique specifies foreground objects in the first frame of an image sequence, either manually or automatically. From the initial segmentation, the SCGMM segmentation system learns two spatial-color Gaussian mixture models (SCGMM) for the foreground and background objects. These models are built into a first-order Markov random field (MRF) energy function. The minimization of the energy function leads to a binary segmentation of the images in the image sequence, which can be solved efficiently using a conventional graph cut procedure.
机译:用于分割图像的空间颜色高斯混合模型(SCGMM)图像分割技术。 SCGMM图像分割技术可以手动或自动在图像序列的第一帧中指定前景对象。从初始分割中,SCGMM分割系统为前景和背景对象学习两个空间颜色高斯混合模型(SCGMM)。这些模型被内置到一阶马尔可夫随机场(MRF)能量函数中。能量函数的最小化导致图像序列中图像的二进制分割,这可以使用常规的图形切割程序有效地解决。

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