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Statistical Mechanical Approach to Image Processing Technology Bayes-Optimal Solution to Inverse Halftoning via Super-Resolution

机译:图像处理技术贝叶斯的统计机械方法 - 通过超分辨率来反转半色调的最佳解决方案

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We apply statistical mechanics of the Q-Ising model to a typical problem in information processing technology which is called as inverse halftoning. Here, we reconstruct an original image by making use of multiple dithered images so as to maximize the posterior marginal probability. Then, in order to clarify the validity of the present method, we estimate upper bound of the performance using the Monte Carlo simulation both for a 256-level standard image and a set of gray-level images generated by an assumed true prior. The simulation for the gray-level images finds that the lower bound of the root mean square becomes smaller with the increase in the number of dithered images and that image reconstruction is perfectly carried out, if Q kinds of dithered images are utilized, where Q is the number of the gray-levels. These properties are qualitatively confirmed by the analytical estimate using the infinite-range model. Further, we find that the performance for a 256-level image is improved by utilizing prior information on gray-level images, even if we use a small number of dithered images.
机译:我们将Q-Ising模型的统计机制应用于信息处理技术中的典型问题,称为逆半色调。这里,我们通过使用多个抖动图像来重建原始图像,以便最大化后边缘概率。然后,为了阐明本方法的有效性,我们使用Monte Carlo模拟来估计性能的上限,用于使用256级标准图像和由假设的真实的真实的图像生成的一组灰度级图像。灰度图像的模拟发现,随着抖动图像数量的增加,如果使用Q种抖动图像,则逐个抖动图像的图像重建变得更小灰度级的数量。使用无限范围模型,通过分析估计来定性证实这些性质。此外,我们发现,即使我们使用少量抖动图像,也可以通过利用关于灰度级图像的先前信息来提高256级图像的性能。

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