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Image Micro-pattern Analysis Using Fuzzy Numbers

机译:使用模糊数的图像微模式分析

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This paper proposes a new methodology for micro pattern analysis in digital images based on fuzzy numbers. A micro-pattern is the structure of the gray-level pixels within a neighborhood and can describe the spatial context of the image, such as edge, line, spot, blob, corner, texture, and more complex patterns. By treating a pixel neighborhood as a fuzzy set and each pixel gray-level as a fuzzy number, we can evaluate the membership degree of the central pixel to the others. We have called this method the Local Fuzzy Pattern (LFP). Using a sigmoid membership function, we proved that the proposed methodology surpasses the Hit-rate of the Local Binary Pattern (LBP), for texture classification. The LFP proved to be robust to image rotation. Moreover, our proposed formulation for the LFP is a generalization of previously published techniques, such as Texture Unit, LBP, FUNED, and Census Transform.
机译:本文提出了一种基于模糊数的数字图像微模式分析新方法。微型图案是邻域内的灰度像素的结构,可以描述图像的空间上下文,例如边缘,线条,斑点,斑点,拐角,纹理和更复杂的图案。通过将像素邻域视为模糊集,并将每个像素灰度级视为模糊数,我们可以评估中心像素与其他像素的隶属度。我们称这种方法为局部模糊模式(LFP)。使用S形隶属函数,我们证明了所提出的方法超过了局部二值模式(LBP)的命中率,用于纹理分类。 LFP被证明对图像旋转具有鲁棒性。而且,我们为LFP提出的建议是对以前发布的技术的概括,例如纹理单元,LBP,FUNED和人口普查变换。

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