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Super-resolution Image Reconstruction Based on Tukey Data Fusion and Bilateral-Total-Variation Regularization

机译:基于Tukey数据融合和双边总变化正则化的超分辨率图像重建

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摘要

Images of high-resolution are desired and often required in most photoelectronic imaging applications, and corresponding image reconstruction algorithm has became the frontier topics. On the basis of stochastic theory, a novel super-resolution image reconstruction algorithm based on Tukey norm data fusion and bilateral total variation regularization is proposed in this paper. The Tukey norm is employed for fusing the data of low-resolution frames and removing outliers in the data, and then aiming at the sickness of super-resolution reconstruction, the bilateral total variation regularization as a priori knowledge about the solution is incorporated to remove the artifacts from the final answer and improve the convergence rate. Simulated and real experiment results show that the proposed algorithm can improve the image resolution greatly and it is immune to noise and errors in motion and blur estimation.
机译:在大多数光电成像应用中,高分辨率图像是理想的并且经常需要,并且相应的图像重建算法已成为前沿课题。在随机理论的基础上,提出了一种基于Tukey范数数据融合和双边总变化正则化的超分辨率图像重建算法。 Tukey规范用于融合低分辨率帧的数据并消除数据中的离群值,然后针对超分辨率重建的弊端,将双边总变化正则化作为关于解决方案的先验知识,以消除文物从最终答案中提高了收敛速度。仿真和真实实验结果表明,该算法可以大大提高图像分辨率,并且不受噪声,运动误差和模糊估计的影响。

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