Author: Proschan, Michael A.
Title: Discussion on “Improving precision and power in randomized trials for COVIDâ€19 treatments using covariate adjustment for binary, ordinal, and timeâ€toâ€event outcomes†Cord-id: 35m4h9q8 Document date: 2021_6_9
ID: 35m4h9q8
Snippet: Benkeser et al. present a very informative paper evaluating the efficiency gains of covariate adjustment in settings with binary, ordinal, and timeâ€toâ€event outcomes. The adjustment method focuses on estimating the marginal treatment effect averaged over the covariate distribution in both arms combined. The authors show that covariate adjustment can achieve power gains that could find answers more quickly. The suggested approach is an important weapon in the armamentarium against epidemics l
Document: Benkeser et al. present a very informative paper evaluating the efficiency gains of covariate adjustment in settings with binary, ordinal, and timeâ€toâ€event outcomes. The adjustment method focuses on estimating the marginal treatment effect averaged over the covariate distribution in both arms combined. The authors show that covariate adjustment can achieve power gains that could find answers more quickly. The suggested approach is an important weapon in the armamentarium against epidemics like COVIDâ€19. I recommend evaluating the procedure against more traditional approaches for conditional analyses (e.g., logistic regression) and against blinded methods of building prediction models followed by randomizationâ€based inference.
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