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Between hard and soft thresholding: optimal iterative thresholding algorithms

机译:在硬阈值之间:最佳迭代阈值算法

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Iterative thresholding algorithms seek to optimize a differentiable objective function over a sparsity or rank constraint by alternating between gradient steps that reduce the objective and thresholding steps that enforce the constraint. This work examines the choice of the thresholding operator and asks whether it is possible to achieve stronger guarantees than what is possible with hard thresholding. We develop the notion of relative concavity of a thresholding operator, a quantity that characterizes the worst-case convergence performance of any thresholding operator on the target optimization problem. Surprisingly, we find that commonly used thresholding operators, such as hard thresholding and soft thresholding, are suboptimal in terms of worst-case convergence guarantees. Instead, a general class of thresholding operators, lying between hard thresholding and soft thresholding, is shown to be optimal with the strongest possible convergence guarantee among all thresholding operators. Examples of this general class includes ?_q thresholding with appropriate choices of q and a newly defined reciprocal thresholding operator. We also investigate the implications of the improved optimization guarantee in the statistical setting of sparse linear regression and show that this new class of thresholding operators attain the optimal rate for computationally efficient estimators, matching the Lasso.
机译:迭代阈值算法试图通过在减少强制执行约束的目标和阈值步骤的梯度步骤之间交替来优化稀疏度或等级约束的可区分目标函数。这项工作检查了阈值操作员的选择,并询问是否可以实现比用硬阈值更能实现更强的保证。我们开发了阈值操作员的相对凹度的概念,该数量表征了目标优化问题上任何阈值操作员的最差循环收敛性能。令人惊讶的是,我们发现常用的阈值操作员(例如硬阈值和软阈值)在最坏情况的融合保证方面是次优的。取而代之的是,位于硬阈值和软阈值之间的一般阈值运算符被证明是最佳的,并且在所有阈值操作员之间具有最强的收敛保证。 Examples of this general class includes ?_q thresholding with appropriate choices of q and a newly defined reciprocal thresholding operator.我们还研究了改进的优化保证在稀疏线性回归的统计环境中的含义,并表明这种新的阈值操作员达到了计算高效估计器的最佳速率,与LASSO匹配。

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