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A class of fractional-order multi-scale variational models and alternating projection algorithm for image denoising

机译:一类分数阶多尺度变分模型和交替投影算法的图像去噪

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The total variation model proposed by Rudin, Osher and Fatemi performs very well for removing noise while preserving edges. However, it favors a piecewise constant solution in BV space which often leads to the staircase effect, and small details such as textures are often filtered out with noise in the process of denoising. To preserve the textures and eliminate the staircase effect, we improve the total variation model in this paper. This is accomplished by the following steps: (1) we define a new space of functions of fractional-order bounded variation called the BV_α space by using the Gruenwald-Letnikov definition of fractional-order derivative; (2) we model the structure of the image as a function belonging to the BV_α space, and the textures in different scales as functions belonging to different negative Sobolev spaces. Thus, we propose a class of fractional-order multi-scale variational models for image denoising. (3) We analyze some properties of the fraction-order total variation operator and its conjugate operator. By using these properties, we develop an alternation projection algorithm for the new model and propose an efficient condition of the convergence of the algorithm. The numerical results show that the fractional-order multi-scale variational model can improve the peak signal to noise ratio of image, preserve textures and eliminate the staircase effect efficiently in the process of denoising.
机译:Rudin,Osher和Fatemi提出的总变化模型在去除噪声的同时保持边缘的效果很好。但是,它支持BV空间中的分段恒定解,这经常会导致阶梯效应,并且在去噪过程中,诸如纹理之类的小细节经常会被噪声滤除。为了保留纹理并消除阶梯效应,我们改进了总变化模型。这是通过以下步骤完成的:(1)通过使用分数阶导数的Gruenwald-Letnikov定义,定义了分数阶有界变化函数的新空间,称为BV_α空间; (2)我们将图像的结构建模为属于BV_α空间的函数,将不同比例的纹理建模为属于不同的负Sobolev空间的函数。因此,我们提出了一类分数阶多尺度变分模型进行图像去噪。 (3)分析了分数阶总变异算子及其共轭算子的一些性质。利用这些特性,我们为新模型开发了一种交替投影算法,并提出了算法收敛的有效条件。数值结果表明,分数阶多尺度变分模型可以提高图像的峰值信噪比,保留纹理,并在去噪过程中有效消除阶梯效应。

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