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Koki Okajima

1 accepted papers

2023

Average case analysis of Lasso under ultra sparse conditions

AISTATS 2023poster

We analyze the performance of the least absolute shrinkage and selection operator (Lasso) for the linear model when the number of regressors $N$ grows larger keeping the true support size $d$ finite, i.e., the ultra-sparse case. The result is based on a novel treatment of the non-rigorous replica me…

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