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Superresolution image reconstruction using fast inpainting algorithms

机译:使用快速修复算法的超分辨率图像重建

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摘要

The main aim of this paper is to employ the total variation (TV) inpainting model to superresolution imaging problems. We focus on the problem of reconstructing a high-resolution image from several decimated, blurred and noisy low-resolution versions of the high-resolution image. We propose a general framework for multiple shifted and multiple blurred low-resolution image frames which subsumes several well-known superresolution models. Moreover, our framework allows an arbitrary pattern of missing pixels and in particular missing frames. The proposed model combines the TV inpainting model with the framework to formulate the superresolution image reconstruction problem as an optimization problem. A distinct feature of our model is that in regions without missing pixels, the reconstruction process is regularized by TV minimization whereas in regions with missing pixels or missing frames, they are reconstructed automatically by means of TV inpainting. A fast algorithm based on fixed-point iterations and preconditioning techniques is investigated to solve the associated Euler-Lagrange equations. Experimental results are given to show that the proposed TV superresolution imaging model is effective and the proposed algorithm is efficient.
机译:本文的主要目的是将总变化(TV)修复模型应用于超分辨率成像问题。我们专注于从高分辨率图像的多个抽取,模糊和嘈杂的低分辨率版本中重建高分辨率图像的问题。我们提出了一个包含多个众所周知的超分辨率模型的,用于多个移位和多个模糊的低分辨率图像帧的通用框架。而且,我们的框架允许任意模式的像素丢失,尤其是帧丢失。所提出的模型将电视修复模型与框架相结合,将超分辨率图像重建问题表达为优化问题。我们模型的一个显着特征是,在没有像素丢失的区域中,重建过程通过电视最小化来规范化,而在像素缺失或帧丢失的区域中,它们会通过电视修复自动重建。研究了一种基于定点迭代和预处理技术的快速算法来求解相关的Euler-Lagrange方程。实验结果表明,所提出的电视超分辨率成像模型是有效的,所提出的算法是有效的。

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