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Image Magnification Method Using Joint Diffusion

机译:联合扩散的图像放大方法

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摘要

In this paper a new algorithm for image magnification is presented. Because linear magnification/interpolation techniques diminish the contrast and produce sawtooth effects, in recent years, many nonlinear interpolation methods, especially nonlinear diffusion based approaches, have been proposed to solve these problems. Two recently proposed techniques for interpolation by diffusion, forward and backward diffusion (FAB) and level-set reconstruction (LSR), cannot enhance the contrast and smooth edges simultaneously. In this article, a novel Partial Differential Equations (PDE) based approach is presented. The contributions of the paper include: firstly, a unified form of diffusion joining FAB and LSR is constructed to have all of their virtues; secondly, to eliminate artifacts of the joint diffusion, soft constraint takes the place of hard constraint presented by LSR; thirdly, the determination of joint coefficients, criterion for stopping time and color image processing are also discussed. The results demonstrate that the method is visually and quantitatively better than Bicubic, FAB and LSR.
机译:本文提出了一种新的图像放大算法。由于线性放大/插值技术会减小对比度并产生锯齿效果,因此近年来,已提出了许多非线性插值方法,尤其是基于非线性扩散的方法来解决这些问题。两种最近提出的用于通过扩散进行插值的技术,前向和后向扩散(FAB)和水平集重构(LSR)无法同时增强对比度和平滑边缘。在本文中,提出了一种新颖的基于偏微分方程(PDE)的方法。该论文的贡献包括:首先,构造了具有FAB和LSR的扩散连接的统一形式,使其具有所有优点。其次,为了消除联合扩散的假象,用软约束代替了LSR提出的硬约束。第三,讨论了联合系数的确定,停止时间的准则和彩色图像处理。结果表明,该方法在视觉和定量上均优于Bicubic,FAB和LSR。

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