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Texture segmentation using local morphological multifractal exponents

机译:纹理分割使用局部形态学多术指数

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This paper deals with the problem of segmenting various textures. For this purpose, we have applied mathematical morphology for the multifractal analysis of images. The digital gray level image is treated as a 3D surface whose multifractal measures are calculated by performing dilations on this surface. Plotting the acquired measures against the size of the structuring element, the local morphological multifractal exponents can be estimated, based on which the unsupervised fuzzy C-means clustering method is used to segment a texture image into the desired number of classes. Randomly choosing 12 natural textures from the Brodatz album, 66 mosaics of 2 textures and 495 mosaics of 4 textures are used to test the new segmentation approach and other two techniques, where the multifractal features are extracted by the box-counting based methods. The comparison results demonstrate that the proposed approach can differentiate texture images more effectively and provide more robust segmentation results.
机译:本文涉及分割各种纹理的问题。为此目的,我们已经应用了数学形态进行了对图像的多重分析分析。数字灰度级图像被视为通过在该表面上执行扩张来计算多重术措施的3D表面。绘制针对结构元素的大小的获取的措施,可以估计本地形态的多法分形指数,基于未经监督的模糊C-MERIAL聚类方法将纹理图像分段为所需数量的类。从Brodatz专辑中随机选择12个自然纹理,2个纹理的66马赛克和495起纹理的495马赛克用于测试新的分段方法和其他两种技术,其中由基于盒子计数的方法提取多重分行功能。比较结果表明,所提出的方法可以更有效地区分纹理图像并提供更强大的分割结果。

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