Transformation model estimation of survival under dependent truncation and independent censoring

Author:

Chiou Sy Han1ORCID,Austin Matthew D1,Qian Jing2,Betensky Rebecca A1

Affiliation:

1. Department of Biostatistics, Harvard T.H. Chan School of Public Health, Boston, MA, USA

2. Department of Biostatistics and Epidemiology, School of Public Health and Health Sciences, University of Massachusetts Amherst, Amherst, MA, USA

Abstract

Truncation is a mechanism that permits observation of selected subjects from a source population; subjects are excluded if their event times are not contained within subject-specific intervals. Standard survival analysis methods for estimation of the distribution of the event time require quasi-independence of failure and truncation. When quasi-independence does not hold, alternative estimation procedures are required; currently, there is a copula model approach that makes strong modeling assumptions, and a transformation model approach that does not allow for right censoring. We extend the transformation model approach to accommodate right censoring. We propose a regression diagnostic for assessment of model fit. We evaluate the proposed transformation model in simulations and apply it to the National Alzheimer’s Coordinating Centers autopsy cohort study, and an AIDS incubation study. Our methods are publicly available in an R package, tranSurv.

Funder

National Institutes of Health

Harvard Catalyst

Harvard NeuroDiscovery Center

Publisher

SAGE Publications

Subject

Health Information Management,Statistics and Probability,Epidemiology

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