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Nonlinear Multiscale Graph Theory based Segmentation of Color Images

机译:基于非线性多尺度图论的彩色图像分割

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In this paper the issue of image segmentation within the framework of nonlinear multiscale watersheds in combination with graph theory based techniques is addressed. First, a graph is created which decomposes the image in scale and space using the concept of multiscale watersheds. In the subsequent step the obtained graph is partitioned using recursive graph cuts in a coarse to fine manner. In this way, we are able to combine scale and feature measures in a flexible way: the feature-set that is used to measure the dissimilarities may change as we progress in scale. We employ the earth mover's distance on a featureset that combines color, scale and contrast features to measure the dissimilarity between the nodes in the graph. Experimental results demonstrate the efficiency of the proposed method for natural scene images
机译:在本文中,结合基于图论的技术,解决了非线性多尺度分水岭框架内的图像分割问题。首先,创建一个图形,该图形使用多尺度分水岭的概念在比例和空间上分解图像。在随后的步骤中,使用递归图割以粗略到精细的方式对获得的图进行分区。这样,我们就可以灵活地将比例尺和特征量度结合起来:用于测量差异性的特征集可能会随着比例尺的发展而改变。我们在特征集上运用推土铲的距离,该特征集结合了颜色,比例和对比度特征,以测量图中各节点之间的相异性。实验结果证明了该方法对自然场景图像的有效性。

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