2021
DOI: 10.48550/arxiv.2111.06775
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On the structure of regularization paths for piecewise differentiable regularization terms

Abstract: Regularization is used in many different areas of optimization when solutions are sought which not only minimize a given function, but also possess a certain degree of regularity. Popular applications are image denoising, sparse regression and machine learning. Since the choice of the regularization parameter is crucial but often difficult, path-following methods are used to approximate the entire regularization path, i.e., the set of all possible solutions for all regularization parameters. Due to their natur… Show more

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