Optimal test Procedures for Multiple Hypotheses Controlling the Familywise Expected Loss

Author:

Maurer Willi1,Bretz Frank12ORCID,Xun Xiaolei3

Affiliation:

1. Statistical Methodology, Novartis Pharma AG , Basel , Switzerland

2. Section for Medical Statistics, Center for Medical Statistics, Informatics, and Intelligent Systems, Medical University of Vienna , Vienna , Austria

3. Global Statistics and Data Science, BeiGene , Shanghai , China

Abstract

Abstract We consider the problem of testing multiple null hypotheses, where a decision to reject or retain must be made for each one and embedding incorrect decisions into a real-life context may inflict different losses. We argue that traditional methods controlling the Type I error rate may be too restrictive in this situation and that the standard familywise error rate may not be appropriate. Using a decision-theoretic approach, we define suitable loss functions for a given decision rule, where incorrect decisions can be treated unequally by assigning different loss values. Taking expectation with respect to the sampling distribution of the data allows us to control the familywise expected loss instead of the conventional familywise error rate. Different loss functions can be adopted, and we search for decision rules that satisfy certain optimality criteria within a broad class of decision rules for which the expected loss is bounded by a fixed threshold under any parameter configuration. We illustrate the methods with the problem of establishing efficacy of a new medicinal treatment in non-overlapping subgroups of patients.

Publisher

Oxford University Press (OUP)

Subject

Applied Mathematics,General Agricultural and Biological Sciences,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,Statistics and Probability

Reference21 articles.

1. Multiple hypotheses testing with weights;Benjamini;Scandinavian Journal of Statistics,1997

2. The population-wise error rate for clinical trials with overlapping populations;Brannath,2023

3. Decision theory results for one-sided multiple comparison procedures;Cohen;The Annals of Statistics,2005

4. Simultaneous test procedures: some theory of multiple comparisons;Gabriel;The Annals of Mathematical Statistics,1969

5. Adaptive designs for subpopulation analysis optimizing utility functions;Graf;Biometrical Journal,2015

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