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A statistical descriptor for texture images based on the box counting fractal dimension

机译:基于分形维数的盒子纹理图像的统计描述符

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摘要

This work proposes a method for supervised classification of grayscale texture images using the numerical computation of the box counting fractal dimension. Each pixel is mapped onto a point in a three-dimensional cloud, where the normalized gray level of each pixel is the third coordinate, and we analyze the distribution of points inside a mesh of boxes. Information at different resolutions are captured by varying the size of each box in the mesh. The texture descriptors are provided by a measure of organization of the points in the mesh, which is the entropy, and other statistical measures of this distribution, namely, mean, deviation and energy. We also propose a mathematical analysis of the model, which is accomplished here by employing techniques from Statistics and Combinatorics, quantifying the relation between the distribution of points and attributes classically associated to textures such as homogeneity and scale dependence. The proposed descriptors are applied to the classification of three well-known texture databases for benchmark purposes. In a comparison with other texture descriptors in the literature, the proposal demonstrated to be competitive, confirming the potential of a combination of box counting fractal dimension and statistics. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项工作提出了一种使用数值计算分形维数的盒子的数值计算来监督灰度纹理图像的分类方法。每个像素被映射到三维云中的点,其中每个像素的归一化灰度级是第三坐标,我们分析盒网内网内点的分布。通过改变网格中每个框的大小来捕获不同分辨率的信息。纹理描述符由网格中点的组织的量度提供,这是该分布的熵和其他统计测量,即平均值,偏差和能量。我们还提出了对模型的数学分析,通过使用来自统计和组合的技术,量化点和属性与诸如同质性和比例依赖性的纹理相关的分布与属性之间的关系来实现的模型。所提出的描述符适用于三个众所周知的纹理数据库的分类,用于基准目的。在与文献中的其他纹理描述符相比,该提案表明是竞争力的,确认盒子分数尺寸和统计数据的组合的潜力。 (c)2019 Elsevier B.v.保留所有权利。

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