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arxiv: 1405.3222 · v2 · pith:ZFMYKSLMnew · submitted 2014-05-13 · 📊 stat.CO · cs.LG· stat.ML

Efficient Implementations of the Generalized Lasso Dual Path Algorithm

classification 📊 stat.CO cs.LGstat.ML
keywords implementationslassomatrixpathproblemsalgorithmdescribedual
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We consider efficient implementations of the generalized lasso dual path algorithm of Tibshirani and Taylor (2011). We first describe a generic approach that covers any penalty matrix D and any (full column rank) matrix X of predictor variables. We then describe fast implementations for the special cases of trend filtering problems, fused lasso problems, and sparse fused lasso problems, both with X=I and a general matrix X. These specialized implementations offer a considerable improvement over the generic implementation, both in terms of numerical stability and efficiency of the solution path computation. These algorithms are all available for use in the genlasso R package, which can be found in the CRAN repository.

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