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Two deterministic half-quadratic regularization algorithms for computed imaging

机译:两个确定的半二次正则化算法用于计算成像

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Many image processing problems are ill-posed and must be regularized. Usually, a roughness penalty is imposed on the solution. The difficulty is to avoid the smoothing of edges, which are very important attributes of the image. The authors first give sufficient conditions for the design of such an edge-preserving regularization. Under these conditions, it is possible to introduce an auxiliary variable whose role is twofold. Firstly, it marks the discontinuities and ensures their preservation from smoothing. Secondly, it makes the criterion half-quadratic. The optimization is then easier. The authors propose a deterministic strategy, based on alternate minimizations on the image and the auxiliary variable. This yields two algorithms, ARTUR and LEGEND. The authors apply these algorithms to the problem of SPECT reconstruction.
机译:许多图像处理问题都没有提出,必须是正规化的。通常,对解决方案施加粗糙度罚款。难度是避免边缘的平滑,这是图像的非常重要的属性。作者首先为这种边缘保留正则化的设计提供了足够的条件。在这些条件下,可以引入辅助变量,其作用是双重的。首先,它标志着不连续性并确保它们免受平滑的保存。其次,它使标准半二次。然后优化更容易。作者提出了一种基于图像和辅助变量的替代最小化的确定性策略。这产生了两种算法,Artur和传说。作者将这些算法应用于SPECT重建问题。

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