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Relationship between the optimal solutions of least squares, regularized with l(0)-norm and constrained by k-sparsity

机译:由l(0)范数正则化并受k稀疏约束的最小二乘法的最优解之间的关系

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摘要

Two widely used models to find a sparse solution from a noisy underdetermined linear system are the constrained problem where the quadratic error is minimized subject to a sparsity constraint, and the regularized problem where a regularization parameter balances the minimization of both quadratic error and sparsity. However, the connections between these two problems have remained unclear so far. We provide an exhaustive description of the relationship between their globally optimal solutions. A partial equivalence between them always exists. We exhibit a sequence of critical parameters that partitions the positive axis into a certain number of intervals. For every regularization parameter inside an interval, there is a sparsity level such that the regularized problem and the constrained problem have the same global minimizers. At the values of the critical parameters, the optimal set of the regularized problem contains two optimal sets of the constrained problem. When the length of the sequence of critical parameters equals the number of all sparsity levels, both problems are quasi-completely equivalent. The critical parameters are obtained from the optimal values of the constrained problem. (C) 2015 Elsevier Inc. All rights reserved.
机译:从嘈杂的欠定线性系统中找到稀疏解的两种广泛使用的模型是:约束问题(其中二次误差受稀疏性约束最小化)和正则化问题,其中正则化参数平衡了二次误差和稀疏性的最小化。但是,到目前为止,这两个问题之间的联系仍然不清楚。我们对它们的全局最优解之间的关系进行了详尽的描述。它们之间始终存在部分对等。我们展示了一系列关键参数,这些参数将正轴划分为一定数量的间隔。对于间隔内的每个正则化参数,都有一个稀疏度级别,以使正则化问题和约束问题具有相同的全局最小化器。在关键参数的值处,正则化问题的最佳集合包含约束问题的两个最佳集合。当关键参数序列的长度等于所有稀疏度的数量时,这两个问题都是完全等价的。关键参数是从约束问题的最佳值获得的。 (C)2015 Elsevier Inc.保留所有权利。

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