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首页> 外文期刊>Journal of the Royal Statistical Society. Series C, Applied statistics >Modelling longitudinal semicontinuous emesis volume data with serial correlation in an acupuncture clinical trial
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Modelling longitudinal semicontinuous emesis volume data with serial correlation in an acupuncture clinical trial

机译:在针灸临床试验中使用序列相关性对纵向半连续呕吐量数据进行建模

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摘要

In longitudinal studies, we are often interested in modelling repeated assessments of volume over time. Our motivating example is an acupuncture clinical trial in which we compare the effects of active acupuncture, sham acupuncture and standard medical care on chemotherapy-induced nausea in patients being treated for advanced stage breast cancer. An important end point for this study was the daily measurement of the volume of emesis over a 14-day follow-up period. The repeated volume data contained many Os, had apparent serial correlation and had missing observations, making analysis challenging. The paper proposes a two-part latent process model for analysing the emesis volume data which addresses these challenges. We propose a Monte Carlo EM algorithm for parameter estimation and we use this methodology to show the beneficial effects of acupuncture on reducing the volume of emesis in women being treated for breast cancer with chemotherapy. Through simulations, we demonstrate the importance of correctly modelling the serial correlation for making conditional inference. Further, we show that the correct model for the correlation structure is less important for making correct inference on marginal means.
机译:在纵向研究中,我们经常对建模随时间变化的体积反复评估感兴趣。我们的激励性例子是针灸临床试验,其中我们比较了积极针刺,假针刺和标准医疗对晚期乳腺癌患者化疗引起的恶心的影响。这项研究的重要终点是在14天的随访期内每日测量呕吐量。重复的体积数据包含许多Os,具有明显的序列相关性并且缺少观测值,这使分析具有挑战性。本文提出了一个由两部分组成的潜在过程模型,用于分析呕吐量数据,从而解决了这些挑战。我们提出了一种用于参数估计的蒙特卡洛EM算法,并且我们使用这种方法来显示针灸对减少接受化疗的乳腺癌女性呕吐量的有益作用。通过仿真,我们证明了正确建模串行相关性以进行条件推断的重要性。此外,我们显示出正确的相关结构模型对于边际均值的正确推断不那么重要。

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