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Censored regression with the multistate accelerated sojourn times model
Authors:Yijian Huang
Institution:Fred Hutchinson Cancer Research Center, Seattle, USA
Abstract:Many disease processes are characterized by two or more successive health states, and it is often of interest and importance to assess state-specific covariate effects. However, with incomplete follow-up data such inference has not been satisfactorily addressed in the literature. We model the logarithm-transformed sojourn time in each state as linearly related to the covariates; however, neither the distributional form of the error term nor the dependence structure of the states needs to be specified. We propose a regression procedure to accommodate incomplete follow-up data. Asymptotic theory is presented, along with some tools for goodness-of-fit diagnostics. Simulation studies show that the proposal is reliable for practical use. We illustrate it by application to a cancer clinical trial.
Keywords:Accelerated failure time model  Dependent censoring  Estimating equation  Identifiability  Multistate process  Multivariate failure time  Semiparametric inference
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