A Minimum Distance Estimation Approach to the Two-Sample Location-Scale Problem

被引:0
|
作者
Zhiyi Zhang
Qiqing Yu
机构
[1] University of North Carolina at Charlotte,Department of Mathematics
[2] SUNY,Department of Mathematical Sciences
来源
Lifetime Data Analysis | 2002年 / 8卷
关键词
model; censored data; two-sample problem; quantile;
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摘要
As reported by Kalbfleisch and Prentice (1980), the generalized Wilcoxon test fails to detect a difference between the lifetime distributions of the male and female mice died from Thymic Leukemia. This failure is a result of the test's inability to detect a distributional difference when a location shift and a scale change exist simultaneously. In this article, we propose an estimator based on the minimization of an average distance between two independent quantile processes under a location-scale model. Large sample inference on the proposed estimator, with possible right-censorship, is discussed. The mouse leukemia data are used as an example for illustration purpose.
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页码:289 / 305
页数:16
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