Marloes Maathuis

Professor of Statistics

ETH Zürich
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Switzerland

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Marloes Maathuis is a Professor of Statistics at ETH Zurich, Switzerland. Her research areas encompass statistical methodologies related to causal inference, estimation in heavy-tailed distributions, and the application of statistical tools in public health, particularly in the context of COVID-19. Recent publications include studies on false discovery proportion bounds, effective reproductive number estimation, and statistical explorations of prognostic biomarkers in cancer treatment.

Articles (10)

Simultaneous false discovery proportion bounds via knockoffs and closed testing

We propose new methods to obtain simultaneous false discovery proportion bounds for knockoff-based approaches. We first investigate an approach based on Janson and Su’s k-familywise error rate control method and interpolation. We then generalize it by considering a collection of k values, and show that the bound of Katsevich and Ramdas is a special case of this method and can be uniformly improved. Next, we further generalize the method by using closed testing with a multi-weighted-sum local test statistic. This allows us to obtain a further uniform improvement and other generalizations over previous methods. We also develop an efficient shortcut for its implementation. We compare the performance of our proposed methods in simulations and apply them to a data set from the UK Biobank.

Year:

2024

Collaborators (5)

Emilija Perković

Dorothy Gilford Early Career Endowed Professor in Mathematical Statistics, UW Statistics

University of Washington

UNITED STATES

Stefanie Hiltbrunner

University of Fribourg

SWITZERLAND

Leonard Henckel

University College Dublin

IRELAND

Jelle J Goeman

Leiden University Medical Center

NETHERLANDS

Adrian Lison

ETH Zürich

SWITZERLAND
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