Multistate models as a framework for estimand specification in clinical trials of complex processes

Author:

Bühler Alexandra1ORCID,Cook Richard J.1ORCID,Lawless Jerald F.1ORCID

Affiliation:

1. Department of Statistics and Actuarial Science University of Waterloo Waterloo Ontario Canada

Abstract

Intensity‐based multistate models provide a useful framework for characterizing disease processes, the introduction of interventions, loss to followup, and other complications arising in the conduct of randomized trials studying complex life history processes. Within this framework we discuss the issues involved in the specification of estimands and show the limiting values of common estimators of marginal process features based on cumulative incidence function regression models. When intercurrent events arise we stress the need to carefully define the target estimand and the importance of avoiding targets of inference that are not interpretable in the real world. This has implications for analyses, but also the design of clinical trials where protocols may help in the interpretation of estimands based on marginal features.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

Statistics and Probability,Epidemiology

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