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Exact post-selection inference, with application to the lasso

25 November 2013
Jason D. Lee
Dennis L. Sun
Yuekai Sun
Jonathan E. Taylor
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Abstract

We develop a general approach to valid inference after model selection. At the core of our framework is a result that characterizes the distribution of a post-selection estimator conditioned on the selection event. We specialize the approach to model selection by the lasso to form valid confidence intervals for the selected coefficients and test whether all relevant variables have been included in the model.

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