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首页> 外文期刊>Journal of Mathematical Analysis and Applications >On a class of ill-posed minimization problems in image processing
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On a class of ill-posed minimization problems in image processing

机译:关于一类图像处理中的不适定最小化问题

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摘要

In this paper, we show that minimization problems involving sublinear regularizing terms are ill-posed, in general, although numerical experiments in image processing give very good results. The energies studied here are inspired by image restoration and image decomposition. Rewriting the nonconvex sublinear regularizing terms as weighted total variations, we give a new approach to perform minimization via the well-known Chambolle's algorithm. The approach developed here provides an alternative to the well-known half-quadratic minimization one.
机译:在本文中,尽管图像处理中的数值实验给出了很好的结果,但我们证明了涉及次线性正则项的最小化问题是不恰当的。此处研究的能量受图像恢复和图像分解的启发。将非凸次线性正则项重写为加权总方差,我们提供了一种通过众所周知的Chambolle算法执行最小化的新方法。这里开发的方法提供了一种替代众所周知的半二次最小化的方法。

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