Literature DB >> 26257447

A LASSO FOR HIERARCHICAL INTERACTIONS.

Jacob Bien1, Jonathan Taylor1, Robert Tibshirani1.   

Abstract

We add a set of convex constraints to the lasso to produce sparse interaction models that honor the hierarchy restriction that an interaction only be included in a model if one or both variables are marginally important. We give a precise characterization of the effect of this hierarchy constraint, prove that hierarchy holds with probability one and derive an unbiased estimate for the degrees of freedom of our estimator. A bound on this estimate reveals the amount of fitting "saved" by the hierarchy constraint. We distinguish between parameter sparsity-the number of nonzero coefficients-and practical sparsity-the number of raw variables one must measure to make a new prediction. Hierarchy focuses on the latter, which is more closely tied to important data collection concerns such as cost, time and effort. We develop an algorithm, available in the R package hierNet, and perform an empirical study of our method.

Entities:  

Keywords:  Regularized regression; convexity; hierarchical sparsity; interactions; lasso

Year:  2013        PMID: 26257447      PMCID: PMC4527358          DOI: 10.1214/13-AOS1096

Source DB:  PubMed          Journal:  Ann Stat        ISSN: 0090-5364            Impact factor:   4.028


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5.  A LASSO FOR HIERARCHICAL INTERACTIONS.

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Journal:  Ann Stat       Date:  2013-06       Impact factor: 4.028

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