首页> 外文期刊>Biometrics: Journal of the Biometric Society : An International Society Devoted to the Mathematical and Statistical Aspects of Biology >Discrete-Time Nonparametric Estimation for Semi-Markov Models of Chain-of-Events Data Subject to Interval Censoring and Truncation
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Discrete-Time Nonparametric Estimation for Semi-Markov Models of Chain-of-Events Data Subject to Interval Censoring and Truncation

机译:时间间隔截断的事件链数据的半马尔可夫模型的离散时间非参数估计

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摘要

Chain-of-events data are longitudinal observations on a succession of events that can only occur in a prescribed order. One goal in an analysis of this type of data is to determine the distribution of times between the successive events. This is difficult when individuals are observed periodically rather than continuously because the event times are then interval censored. Chain-of-events data may also be subject to truncation when individuals can only be observed if a certain event in the chain (e.g., the final event) has occurred. We provide a nonparametric approach to estimate the distributions of times between successive events in discrete time for data such as these under the semi-Markov assumption that the times between events are independent. This method uses a self-consistency algorithm that extends Turnbull's algorithm (1976, Journal of the Royal Statistical Society, Series B 38, 290-295). The quantities required to carry out the algorithm can be calculated recursively for improved computational efficiency. Two examples using data from studies involving HIV disease are used to illustrate our methods.
机译:事件链数据是对只能按规定顺序发生的一系列事件的纵向观察。分析此类数据的一个目标是确定连续事件之间的时间分布。当定期地而不是连续地观察个体时,这是困难的,因为随后对事件时间进行间隔检查。当只有在链中的某个事件(例如最终事件)发生时才可以观察到个人时,事件链数据也可能会被截断。我们提供了一种非参数方法来估计离散数据中连续事件之间的时间分布,例如在事件之间的时间是独立的半马尔可夫假设下的数据。该方法使用扩展Turnbull算法的自洽算法(1976年,皇家统计学会杂志,系列B 38,290-295)。可以递归计算执行算法所需的数量,以提高计算效率。以下两个例子使用了涉及HIV疾病的研究数据来说明我们的方法。

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