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ADA-PT: An Adaptive Parameter Tuning Strategy Based on the Weighted Stein Unbiased Risk Estimator

机译:ADA-PT:基于加权斯坦的自偏见风险估算器的自适应参数调谐策略

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The performance of iterative algorithms aimed at solving a regularized least squares problem typically depends on the value of some regularization parameter. Tuning the regularization parameter value is a fundamental step necessary to control the strength of the regularization and hence ensure a good performance. We address the problem of finding the optimal regularization parameter in such iterative algorithms. We propose to adaptively adjust the regularization parameter throughout the iterations of the algorithm by minimizing an estimate of the current risk, typically the Weighted Stein unbiased risk estimate (WSURE). We then prove that, for the case of the Tikhonov regularization, the proposed ADAptive Parameter Tuning (ADA-PT) strategy provides a stationary point consistent with the risk minimizer. We illustrate the efficiency of ADA-PT on two image deconvolution problems: one with the Tikhonov regularization and one with the weighted l-1 analysis wavelet regularization.
机译:旨在解决正常化最小二乘问题的迭代算法的性能通常取决于一些正则化参数的值。调整正则化参数值是控制正规化强度所必需的基本步骤,从而确保良好的性能。我们解决了在这种迭代算法中找到最佳正则化参数的问题。我们建议通过最小化当前风险的估计来自适应地调整算法的整个迭代过程中,通常是加权斯坦因风险估计(WSURE)。然后,我们证明,对于Tikhonov规则化的情况,所提出的自适应参数调谐(ADA-PT)策略提供了与风险最小化器一致的静止点。我们说明了ADA-PT在两种图像解卷积问题上的效率:一个带有Tikhonov正规的一个,一个具有加权L-1分析小波正则化。

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