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Segmentation of Distinct Homogeneous Color Regions in Images

机译:图像中不同同色区域的分割

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摘要

In this paper, we present a novel algorithm to detect homogeneous color regions in images. We show its performance by applying it to skin detection. In contrast to previously presented methods, we use only a rough skin direction vector instead of a static skin model as a priori knowledge. Thus, higher robustness is achieved in images captured under unconstrained conditions. We formulate the segmentation as a clustering problem in color space. A homogeneous color region in image space is modeled using a 3D gaussian distribution. Parameters of the gaus-sians are estimated using the EM algorithm with spatial constraints. We transform the image by a whitening transform and then apply a fuzzy k-means algorithm to the hue value in order to obtain initialization parameters for the EM algorithm. A divisive hierarchical approach is used to determine the number of clusters. The stopping criterion for further subdivision is based on the edge image.For evaluation, the proposed method is applied to skin segmentation and compared with a well known method.
机译:在本文中,我们提出了一种新颖的算法来检测图像中的同色区域。我们将其应用于皮肤检测以显示其性能。与先前提出的方法相比,作为先验知识,我们仅使用粗糙的皮肤方向矢量,而不使用静态皮肤模型。因此,在不受约束的条件下捕获的图像中实现了更高的鲁棒性。我们将分割公式化为色彩空间中的聚类问题。使用3D高斯分布对图像空间中的均匀颜色区域进行建模。使用具有空间约束的EM算法估计高斯参数。我们通过白化变换对图像进行变换,然后将模糊k均值算法应用于色相值,以获得EM算法的初始化参数。划分性方法用于确定群集的数量。进一步细分的停止准则基于边缘图像。为了进行评估,将所提出的方法应用于皮肤分割,并与众所周知的方法进行比较。

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