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Covariate adjustment in randomization-based causal inference for 2K factorial designs

Published 17 Jun 2016 in stat.ME | (1606.05418v2)

Abstract: We develop finite-population asymptotic theory for covariate adjustment in randomization-based causal inference for 2K factorial designs. In particular, we confirm that both the unadjusted and covariate-adjusted estimators of the factorial effects are asymptotically normal, and the latter is more precise than the former.

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