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Fractional Differential Mask: A Fractional Differential-Based Approach for Multiscale Texture Enhancement

机译:分数差分蒙版:基于分数差分的多尺度纹理增强方法

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In this paper, we intend to implement a class of fractional differential masks with high-precision. Thanks to two commonly used definitions of fractional differential for what are known as GrÜmwald–Letnikov and Riemann–Liouville, we propose six fractional differential masks and present the structures and parameters of each mask respectively on the direction of negative x-coordinate, positive x-coordinate, negative y-coordinate, positive y-coordinate, left downward diagonal, left upward diagonal, right downward diagonal, and right upward diagonal. Moreover, by theoretical and experimental analyzing, we demonstrate the second is the best performance fractional differential mask of the proposed six ones. Finally, we discuss further the capability of multiscale fractional differential masks for texture enhancement. Experiments show that, for rich-grained digital image, the capability of nonlinearly enhancing complex texture details in smooth area by fractional differential-based approach appears obvious better than by traditional intergral-based algorithms.
机译:在本文中,我们打算实现一类高精度的分数阶微分掩模。得益于Grümwald–Letnikov和Riemann–Liouville的两个常用的分数微分定义,我们提出了六个分数微分掩模,并分别在负x坐标,正x-方向上显示了每个掩模的结构和参数。坐标,负y坐标,正y坐标,左下对角线,左上对角线,右下对角线和右上对角线。此外,通过理论和实验分析,我们证明了第二个是所提出的六个最佳性能分数差分掩模。最后,我们进一步讨论了多尺度分数差分蒙版用于纹理增强的功能。实验表明,对于富粒度数字图像,基于分数微分的方法在平滑区域中非线性增强复杂纹理细节的能力似乎比传统基于积分的算法明显更好。

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