首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Texture classification based on comparison of second-order statistics. I. Two-point probability density function estimation and distance measure
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Texture classification based on comparison of second-order statistics. I. Two-point probability density function estimation and distance measure

机译:基于二阶统计量比较的纹理分类。一,两点概率密度函数估计和距离测度

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摘要

The two-point probability density function (2P-PDF) gives a full description of the first- and second-order statistics of a random process. We propose a framework for texture classification based on a distance measure between 2P-PDF's after equalization of first-order statistics. This framework allows extraction of the structural information of the process independently of the dynamic range of the image. We present two methods for estimating the 2P-PDF of texture images, and we establish some criteria for efficient computation. The theoretical framework for noise-free texture images is validated with four texture ensembles.
机译:两点概率密度函数(2P-PDF)全面描述了随机过程的一阶和二阶统计量。我们提出了基于一阶统计均衡后2P-PDF之间的距离度量的纹理分类框架。该框架允许独立于图像的动态范围提取过程的结构信息。我们提出了两种估计纹理图像2P-PDF的方法,并为有效计算建立了一些标准。无噪声纹理图像的理论框架通过四个纹理合奏进行了验证。

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