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Sparse inverse covariance estimation with the graphical lasso

Jerome H. Friedman; Trevor Hastie; Robert Tibshirani · Biostatistics · 2007

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We consider the problem of estimating sparse graphs by a lasso penalty applied to the inverse covariance matrix. Using a coordinate descent procedure for the lasso, we develop a simple algorithm--the graphical lasso--that is remarkably fast: It solves a 1000-node problem ( approximately 500,000 parameters) in at most a minute and is 30-4000 times faster than competing methods. It also provides a conceptual link between the exact problem and the approximation suggested by Meinshausen and Bühlmann (2006). We illustrate the method on some cell-signaling data from proteomics.

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APA 7

Friedman, J. H, Hastie, T, & Tibshirani, R. (2007). Sparse inverse covariance estimation with the graphical lasso. https://doi.org/10.1093/biostatistics/kxm045

MLA

Friedman, Jerome H, et al. "Sparse inverse covariance estimation with the graphical lasso." 2007. https://doi.org/10.1093/biostatistics/kxm045.

Chicago

Friedman, Jerome H, Trevor Hastie, and Robert Tibshirani. 2007. "Sparse inverse covariance estimation with the graphical lasso.". https://doi.org/10.1093/biostatistics/kxm045.

Harvard

Friedman, J. H, Hastie, T. and Tibshirani, R. 2007, Sparse inverse covariance estimation with the graphical lasso, Biostatistics, available at: https://doi.org/10.1093/biostatistics/kxm045 [Accessed 7 Aug. 2026].

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Title
Sparse inverse covariance estimation with the graphical lasso
Author / contributors
Jerome H. Friedman; Trevor Hastie; Robert Tibshirani
Publisher
Biostatistics
Publication year
2007
Language
English

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