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A cyclic block coordinate descent method with generalized gradient projections

机译:广义梯度投影的循环块坐标下降法

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摘要

The aim of this paper is to present the convergence analysis of a very general class of gradient projection methods for smooth, constrained, possibly nonconvex, optimization. The key features of these methods are the Armijo linesearch along a suitable descent direction and the non Euclidean metric employed to compute the gradient projection. We develop a very general framework from the point of view of block-coordinate descent methods, which are useful when the constraints are separable. In our numerical experiments we consider a large scale image restoration problem to illustrate the impact of the metric choice on the practical performances of the corresponding algorithm. (C) 2016 Elsevier Inc. All rights reserved.
机译:本文的目的是介绍用于平滑,受约束的(可能是非凸的)优化的非常通用的梯度投影方法类别的收敛性分析。这些方法的主要特征是沿着合适的下降方向的Armijo线搜索以及用于计算梯度投影的非欧几里得度量。我们从块坐标下降法的角度开发了一个非常通用的框架,该方法在约束是可分离的时很有用。在我们的数值实验中,我们考虑了一个大规模的图像恢复问题,以说明度量选择对相应算法的实际性能的影响。 (C)2016 Elsevier Inc.保留所有权利。

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