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Robust maximum a posteriori image super-resolution

机译:强大的最大后验图像超分辨率

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摘要

A global robust M-estimation scheme for maximum a posteriori (MAP) image super-resolution which efficiently addresses the presence of outliers in the low-resolution images is proposed. In iterative MAP image super-resolution, the objective function to be minimized involves the highly resolved image, a parameter controlling the step size of the iterative algorithm, and a parameter weighing the data fidelity term with respect to the smoothness term. Apart from the robust estimation of the high-resolution image, the contribution of the proposed method is twofold: (1) the robust computation of the regularization parameters controlling the relative strength of the prior with respect to the data fidelity term and (2) the robust estimation of the optimal step size in the update of the high-resolution image. Experimental results demonstrate that integrating these estimations into a robust framework leads to significant improvement in the accuracy of the high-resolution image.
机译:提出了一种用于最大后验(MAP)图像超分辨率的全局鲁棒M估计方案,该方案可有效解决低分辨率图像中离群值的问题。在迭代MAP图像超分辨率中,要最小化的目标函数包括高分辨率图像,控制迭代算法步长的参数,以及权衡数据保真度项和平滑度项的参数。除了对高分辨率图像的鲁棒估计之外,所提出方法的贡献还包括两方面:(1)对控制先验参数相对于数据保真度的相对强度的正则化参数进行鲁棒计算,以及(2)高分辨率图像更新中最佳步长的可靠估计。实验结果表明,将这些估计值整合到一个健壮的框架中可以显着提高高分辨率图像的准确性。

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