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Variational Blind Deconvolution of Multi-Channel Images

机译:多通道图像的变分盲解卷积

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The fundamental problem of denoising and deblurring images is addressed in this study. The great difficulty in this task is due to the ill-posedness of the problem. We analyze multi-channel images to gain robustness and regularize the process by the Poly-akov action, which provides an anisotropic smoothing term that uses inter-channel information. Blind deconvolution is then solved by an additional anisotropic regularization term of the same type for the kernel. It is shown that the Beltrami regularizer leads to better results than the total variation (TV) regularizer. An analytic comparison to the TV method is carried out and results on synthetic and real data are demonstrated.
机译:这项研究解决了图像去噪和去模糊的基本问题。这项任务的最大困难是由于问题的不适定性。我们分析多通道图像以获得鲁棒性,并通过Poly-akov动作规范化过程,该操作提供了使用通道间信息的各向异性平滑项。然后通过针对内核的相同类型的其他各向异性正则化项来求解盲反卷积。结果表明,Beltrami正则器比总变化量(TV)正则器产生更好的结果。与TV方法进行了分析比较,并证明了合成数据和真实数据的结果。

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