各向异性扩散智能插值

S. Battiato, G. Gallo, F. Stanco
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引用次数: 50

摘要

如何在保留感知线索的前提下,对单帧数字图像进行放大是一个相关的研究课题。最著名的算法考虑了亮度通道中边缘的存在,以正确地插值原始图像的样本/像素。这种方法允许在插值伪影(混叠模糊效果,…)有限的情况下生成图像,但不能正确保留高频。另一方面,本文提出的放大算法利用经典各向异性扩散,通过智能启发式策略改进,降低了噪声,增强了与放大图像边界/边缘的对比度。该方法计算资源有限,适用于灰度级图像、RGB彩色图像和拜耳数据。实验表明,该算法在质量和效率上都优于经典的插值方法(复制、双线性、双三次)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smart interpolation by anisotropic diffusion
To enlarge a digital image from a single frame preserving the perceptive cues is a relevant research issue. The best known algorithms take into account the presence of edges in the luminance channel, to interpolate correctly the samples/pixels of the original image. This approach allows the production of pictures where the interpolated artifacts (aliasing blurring effect,...) are limited but where high frequencies are not properly preserved. The zooming algorithm proposed in this paper on the other hand reduces the noise and enhances the contrast to the borders/edges of the enlarged picture using classical anisotropic diffusion improved by a smart heuristic strategy. The method requires limited computational resources and it works on gray-level images, RGB color pictures and Bayer data. Our experiments show that this algorithm outperforms in quality and efficiency the classical interpolation methods (replication, bilinear, bicubic).
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