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Image deblurring using a perturbation-basec regularization approach

机译:使用基于扰动的正则化方法进行图像去模糊

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摘要

The image restoration problem deals with images in which information has been degraded by blur or noise. In this work, we present a new method for image deblurring by solving a regularized linear least-squares problem. In the proposed method, a synthetic perturbation matrix with a bounded norm is forced into the discrete ill-conditioned model matrix. This perturbation is added to enhance the singular-value structure of the matrix and hence to provide an improved solution. A method is proposed to find a near-optimal value of the regularization parameter for the proposed approach. To reduce the computational complexity, we present a technique based on the bootstrapping method to estimate the regularization parameter for both low and high-resolution images. Experimental results on the image deblurring problem are presented. Comparisons are made with three benchmark methods and the results demonstrate that the proposed method clearly outperforms the other methods in terms of both the output PSNR and SSIM values.
机译:图像恢复问题涉及信息已被模糊或噪点破坏的图像。在这项工作中,我们提出了一种通过解决正则化线性最小二乘问题进行图像去模糊的新方法。在提出的方法中,将具有有界范数的合成摄动矩阵强迫到离散病态模型矩阵中。添加此扰动可增强矩阵的奇异值结构,从而提供改进的解决方案。提出了一种用于为所提出的方法找到正则化参数的最佳值的方法。为了降低计算复杂度,我们提出了一种基于自举方法的技术,用于估计低分辨率和高分辨率图像的正则化参数。给出了图像去模糊问题的实验结果。比较了三种基准方法,结果表明,该方法在输出PSNR和SSIM值方面均明显优于其他方法。

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