Bastian Rieck
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Articles (11)
A Note on Cherry-Picking in Meta-Analyses
We study selection bias in meta-analyses by assuming the presence of researchers (meta-analysts) who intentionally or unintentionally cherry-pick a subset of studies by defining arbitrary inclusion and/or exclusion criteria that will lead to their desired results. When the number of studies is sufficiently large, we theoretically show that a meta-analysts might falsely obtain (non)significant overall treatment effects, regardless of the actual effectiveness of a treatment. We analyze all theoretical findings based on extensive simulation experiments and practical clinical examples. Numerical evaluations demonstrate that the standard method for meta-analyses has the potential to be cherry-picked.
Year:
2023
Collaborators (4)
Manuel Cossio
Global Medical Head - Digital Health
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Michael Moor
Stanford University
Matthew Hirn
Associate Professor
Michigan State University
Smita Krishnaswamy
Associate Professor
Yale University

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