作者
Zhezhen Jin, DY Lin, LJ Wei, Zhiliang Ying
发表日期
2003/6/1
期刊
Biometrika
卷号
90
期号
2
页码范围
341-353
出版商
Oxford University Press
简介
A broad class of rank‐based monotone estimating functions is developed for the semiparametric accelerated failure time model with censored observations. The corresponding estimators can be obtained via linear programming, and are shown to be consistent and asymptotically normal. The limiting covariance matrices can be estimated by a resampling technique, which does not involve nonparametric density estimation or numerical derivatives. The new estimators represent consistent roots of the non‐monotone estimating equations based on the familiar weighted log‐rank statistics. Simulation studies demonstrate that the proposed methods perform well in practical settings. Two real examples are provided.
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