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Honest Confidence Sets for Sparsely and Non-Sparsely Tuned Model Selection Estimators
Antragstellerin
Professorin Dr. Ulrike Schneider
Fachliche Zuordnung
Mathematik
Förderung
Förderung von 2011 bis 2017
Projektkennung
Deutsche Forschungsgemeinschaft (DFG) - Projektnummer 40095828
In this project we want to investigate the distributional properties of shrinkage estimators, such as the popular Lasso estimator and other regularization methods, with the aim of deriving honest confidence sets based on the these estimators. This kind of estimators has seen immense interest in recent statistics literature. However, it is still largely unknown how to construct valid confidence sets based on such an estimator – a question that is both of theoretical as well as of practical interest.
DFG-Verfahren
Forschungsgruppen
Internationaler Bezug
Österreich