Learning Model-Based Sparsity via Projected Gradient Descent.

IEEE Transactions on Information Theory(2016)

引用 36|浏览25
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摘要
Several convex formulation methods have been proposed previously for statistical estimation with structured sparsity as the prior. These methods often require a carefully tuned regularization parameter, often a cumbersome or heuristic exercise. Furthermore, the estimate that these methods produce might not belong to the desired sparsity model, albeit accurately approximating the true parameter. Th...
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关键词
Cost function,Estimation,Approximation algorithms,Approximation error,Computational modeling,Indexes
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