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使用删失数据检验多状态模型的转移概率矩阵。

Testing transition probability matrix of a multi-state model with censored data.

作者信息

Tattar Prabhanjan Narayanachar, Vaman H Jalikop H

机构信息

Department of Statistics, Bangalore University, Jnanabharathi, Mysore Road, Bangalore, Karnataka 560 056, India.

出版信息

Lifetime Data Anal. 2008 Jun;14(2):216-30. doi: 10.1007/s10985-007-9056-y.

Abstract

In this paper, we develop procedures to test hypotheses concerning transition probability matrices arising from certain nonhomogeneous Markov processes. It is assumed that the data consist of sample paths, some of which are observed until a certain terminal state, and the other paths are censored. Problems of this type arise in the context of multi-state models relevant to Health Related Quality of Life (HRQoL) and Competing Risks. The test statistic is based on the estimator for the associated intensity matrix. We show that the asymptotic null distribution of the proposed statistic is Gaussian, and demonstrate how the procedure can be adopted for HRQoL studies and competing risks model using real data sets. Finally, we establish that the test statistic for the HRQoL has greatest local asymptotic power against a sequence of proportional hazards alternatives converging to the null hypothesis.

摘要

在本文中,我们开发了一些程序来检验关于某些非齐次马尔可夫过程产生的转移概率矩阵的假设。假定数据由样本路径组成,其中一些样本路径被观测到某个终止状态,而其他路径被删失。这类问题出现在与健康相关生活质量(HRQoL)和竞争风险相关的多状态模型的背景下。检验统计量基于相关强度矩阵的估计量。我们证明了所提出统计量的渐近零分布是高斯分布,并展示了如何使用真实数据集将该程序应用于HRQoL研究和竞争风险模型。最后,我们确定了针对收敛于零假设的一系列比例风险备择假设,HRQoL的检验统计量具有最大的局部渐近功效。

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