Inference for restricted mean survival time as a function of restriction time under length-biased sampling

Author:

Bai Fangfang1ORCID,Yang Xiaoran1,Chen Xuerong2,Wang Xiaofei3

Affiliation:

1. School of Statistics, University of International Business and Economics, Beijing, China

2. Center of Statistical Research, Southwestern University of Finance and Economics, Chengdu, China

3. Department of Biostatistics and Bioinformatics, Duke University, Durham, NC, USA

Abstract

The restricted mean survival time (RMST) is often of direct interest in clinical studies involving censored survival outcomes. It describes the area under the survival curve from time zero to a specified time point. When data are subject to length-biased sampling, as is frequently encountered in observational cohort studies, existing methods cannot estimate the RMST for various restriction times through a single model. In this article, we model the RMST as a continuous function of the restriction time under the setting of length-biased sampling. Two approaches based on estimating equations are proposed to estimate the time-varying effects of covariates. Finally, we establish the asymptotic properties for the proposed estimators. Simulation studies are performed to demonstrate the finite sample performance. Two real-data examples are analyzed by our procedures.

Funder

NIH

Guanghua Talent Project of Southwestern University of Finance and Economics

the Fundamental Research Funds for the Central Universities, In UIBE

National Natural Science Foundation of China

Publisher

SAGE Publications

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