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首页> 外文期刊>American Journal of Epidemiology >Multistate analysis of interval-censored longitudinal data: application to a cohort study on performance status among patients diagnosed with cancer.
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Multistate analysis of interval-censored longitudinal data: application to a cohort study on performance status among patients diagnosed with cancer.

机译:间隔检查纵向数据的多状态分析:应用于队列研究中诊断为癌症的患者的表现状态。

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摘要

In observational studies on cancer patients, progression of performance status over time can be described by using a multistate model in which state-to-state transitions represent changes in a patient's health condition. Although a patient experiences transitions in continuous time, assessments on the patient are often made at irregularly spaced time points. In this paper, the authors formulate a Markov 4-state model for examining longitudinal data on performance status collected under intermittent observation. The cohort consisted of 11,342 patients diagnosed with cancer in Ontario, Canada, from 2007 to 2009. The authors extend the model to estimate the predicted probability of reaching the absorbing state, death, over various time intervals. The authors also illustrate what happens to the estimated transition intensities if the true observational scheme is overlooked. Methods for multistate analysis should be used by epidemiologists, since they prove particularly useful for examining the complexities of disease processes.
机译:在对癌症患者的观察性研究中,可以通过使用多状态模型来描述性能状态随时间的进展,其中状态到状态的转换代表患者健康状况的变化。尽管患者经历连续时间的转变,但是通常在不规则间隔的时间点对患者进行评估。在本文中,作者建立了一个马尔可夫四态模型,用于检查在间歇观察下收集的有关性能状态的纵向数据。该队列由2007年至2009年在加拿大安大略省的11,342名被诊断患有癌症的患者组成。作者扩展了该模型,以估计在不同时间间隔内达到吸收状态,死亡的预计概率。作者还说明了如果忽略了真实的观测方案,估计的过渡强度会发生什么。流行病学家应使用多状态分析的方法,因为它们被证明对检查疾病过程的复杂性特别有用。

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