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A semiparametric additive rates model for multivariate recurrent events with missing event categories

机译:具有缺失事件类别的多变量重复事件的半参数加和率模型

摘要

Multivariate recurrent event data arise in many clinical and observational studies, in which subjects may experience multiple types of recurrent events. In some applications, event times can be always observed, but types for some events may be missing. In this article, a semiparametric additive rates model is proposed for analyzing multivariate recurrent event data when event categories are missing at random. A weighted estimating equation approach is developed to estimate parameters of interest, and the resulting estimators are shown to be consistent and asymptotically normal. In addition, a lack-of-fit test is presented to assess the adequacy of the model. Simulation studies demonstrate that the proposed method performs well for practical settings. An application to a platelet transfusion reaction study is provided.
机译:多变量复发事件数据出现在许多临床和观察研究中,其中受试者可能经历多种类型的复发事件。在某些应用程序中,始终可以观察到事件时间,但是某些事件的类型可能会丢失。在本文中,提出了一个半参数加和率模型,用于在事件类别随机丢失时分析多元重复事件数据。开发了一种加权估计方程方法来估计感兴趣的参数,并且所得的估计量被证明是一致且渐近正态的。此外,还提出了缺乏拟合的测试来评估模型的适当性。仿真研究表明,所提出的方法在实际设置中表现良好。提供了在血小板输血反应研究中的应用。

著录项

  • 作者

    Ye P; Zhao X; Sun L; Xu W;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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