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Texture Based Segmentation

机译:基于纹理的分段

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摘要

The ability of human observers to discriminate between textures is related to the contrast between key structural elements and their repeating patterns. Here we have developed an automatic texture classification approach based on this principle. Local contrast information is modelled and a hybrid metric, based on probability density distributions and transportation estimation, are used to classify unseen samples. Quantitative and qualitative evaluation, based on mammographic images and Wolfe classification, is presented and shows segmentation results in line with the various classes.
机译:人类观察者在纹理之间区分的能力与关键结构元素与其重复模式之间的对比有关。在这里,我们基于这一原理开发了自动纹理分类方法。局部对比度信息是建模的,并且基于概率密度分布和运输估计的混合度量用于对看不见的样本进行分类。基于乳房X线图和Wolfe分类,提供了定量和定性评估,并显示分割结果与各种类别一致。

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