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Mirror averaging with sparsity priors

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Résumé

We consider the problem of aggregating the elements of a possibly infinite dictionary for building a decision procedure that aims at minimizing a given criterion. Along with the dictionary, an independent identically distributed training sample is available, on which the performance of a given procedure can be tested. In a fairly general set-up, we establish an oracle inequality for the Mirror Averaging aggregate with any prior distribution. By choosing an appropriate prior, we apply this oracle inequality in the context of prediction under sparsity assumption for the problems of regression with random design, density estimation and binary classification.

langue originaleAnglais
Pages (de - à)914-944
Nombre de pages31
journalBernoulli
Volume18
Numéro de publication3
Les DOIs
étatPublié - 1 août 2012

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