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Regularization Paths for Generalized Linear Models via Coordinate Descent

2010·16.571 Zitationen·Journal of Statistical SoftwareOpen Access
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16.571

Zitationen

3

Autoren

2010

Jahr

Abstract

We develop fast algorithms for estimation of generalized linear models with convex penalties. The models include linear regression, two-class logistic regression, and multi- nomial regression problems while the penalties include ℓ<sub>1</sub> (the lasso), ℓ<sub>2</sub> (ridge regression) and mixtures of the two (the elastic net). The algorithms use cyclical coordinate descent, computed along a regularization path. The methods can handle large problems and can also deal efficiently with sparse features. In comparative timings we find that the new algorithms are considerably faster than competing methods.

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Autoren

Themen

Face and Expression RecognitionSparse and Compressive Sensing TechniquesStatistical Methods and Inference
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