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A semi-Markov model for stroke with piecewise-constant hazards in the presence of left right and interval censoring

机译:在存在左右和间隔检查的情况下具有分段恒定风险的中风的半马尔可夫模型

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摘要

This paper presents a parametric method of fitting semi-Markov models with piecewise-constant hazards in the presence of left, right and interval censoring. We investigate transition intensities in a three-state illness–death model with no recovery. We relax the Markov assumption by adjusting the intensity for the transition from state 2 (illness) to state 3 (death) for the time spent in state 2 through a time-varying covariate. This involves the exact time of the transition from state 1 (healthy) to state 2. When the data are subject to left or interval censoring, this time is unknown. In the estimation of the likelihood, we take into account interval censoring by integrating out all possible times for the transition from state 1 to state 2. For left censoring, we use an Expectation–Maximisation inspired algorithm. A simulation study reflects the performance of the method. The proposed combination of statistical procedures provides great flexibility. We illustrate the method in an application by using data on stroke onset for the older population from the UK Medical Research Council Cognitive Function and Ageing Study. Copyright © 2012 John Wiley & Sons, Ltd.
机译:本文提出了在存在左,右和区间检查的情况下,拟合具有分段风险的半马尔可夫模型的参数方法。我们研究了三态疾病死亡模型中没有恢复的过渡强度。我们通过随时间变化的协变量调整在状态2中花费的时间,调整从状态2(疾病)到状态3(死亡)的过渡强度,从而放松了马尔可夫假设。这涉及从状态1(正常)到状态2过渡的确切时间。当数据受到左或间隔检查时,该时间是未知的。在可能性的估计中,我们通过整合从状态1到状态2过渡的所有可能时间来考虑间隔检查。对于左检查,我们使用了“期望最大化”启发式算法。仿真研究反映了该方法的性能。提议的统计程序组合提供了很大的灵活性。我们通过使用来自英国医学研究理事会认知功能和衰老研究的老年人中风发作数据来说明一种应用中的方法。版权所有©2012 John Wiley&Sons,Ltd.

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