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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/105896


    Title: Semiparametric inference for an accelerated failure time model with dependent truncation
    Authors: 江村剛志;Emura, Takeshi;Wang, Weijing
    Contributors: 理學院統計研究所
    Keywords: Astronomy;Asymptotic properties;Censored data (mathematics);Econometrics;Economics;Epidemiology;Estimating;Estimation;Estimators;Failure times;Finance;Inference;Insurance;Linear programming;Management;Mathematical models;Mathematics;Mathematics and Statistics;Regression;Statistical analysis;Statistical models;Statistical tests;Statistics;Statistics for Business;Studies;Survival analysis;Variables
    Date: 2016-10-01
    Issue Date: 2026-04-23 13:00:15 (UTC+8)
    Publisher: Springer Netherlands;Tokyo: Springer Japan
    Abstract: 摘要: Truncated data are commonly seen in studies of biomedicine, epidemiology, astronomy and econometrics. Existing regression methods for analyzing left-truncated and right-censored data have been developed under the assumption that the lifetime variable of interest is independent of both truncation and censoring variables. In this article, we propose a semiparametric accelerated failure time model that incorporates both covariates and the truncation variable as regressors. The proposed model utilizes the truncation information in statistical modeling and hence allows for dependent truncation. For estimation, we develop a set of estimating equations constructed from the log-rank and quasi-independence test statistics. We show that the resulting estimators are consistent and asymptotically normal. We also propose an explicit formula for variance estimation based on a kernel method. Finite-sample performances of the estimators are studied by simulations. The proposed methodology is applied to analyze a real data for illustration.
    其他題名: Ann Inst Stat Math
    出版者: Tokyo: Springer Japan
    出版日期: 2016-10-01
    出處: Annals of the Institute of Statistical Mathematics, 2016-10, Vol.68 (5), p.1073-1094
    資源來源: ABI/INFORM Collection (via ProQuest)
    版權: The Institute of Statistical Mathematics, Tokyo 2015
    版權: The Institute of Statistical Mathematics, Tokyo 2016
    識別號: ISSN: 0020-3157
    識別號: EISSN: 1572-9052
    識別號: DOI: 10.1007/s10463-015-0526-9
    Appears in Collections:[Graduate Institute of Statistics] journal & Dissertation

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