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在使用带有调和项的非线性混合模型分析昼夜节律数据时。

On analyzing circadian rhythms data using nonlinear mixed models with harmonic terms.

作者信息

Albert Paul S, Hunsberger Sally

机构信息

Biometric Research Branch, National Cancer Institute, Executive Plaza North, Bethesda, Maryland 20892-7434, USA.

出版信息

Biometrics. 2005 Dec;61(4):1115-20; discussion 1120-2. doi: 10.1111/j.0006-341X.2005.464_1.x.

DOI:10.1111/j.0006-341X.2005.464_1.x
PMID:16401286
Abstract

Wang, Ke, and Brown (2003, Biometrics59, 804-812) developed a smoothing-based approach for modeling circadian rhythms with random effects. Their approach is flexible in that fixed and random covariates can affect both the amplitude and phase shift of a nonparametrically smoothed periodic function. In motivating their approach, Wang et al. stated that a simple sinusoidal function is too restrictive. In addition, they stated that "although adding harmonics can improve the fit, it is difficult to decide how many harmonics to include in the model, and the results are difficult to interpret." We disagree with the notion that harmonic models cannot be a useful tool in modeling longitudinal circadian rhythm data. In this note, we show how nonlinear mixed models with harmonic terms allow for a simple and flexible alternative to Wang et al.'s approach. We show how to choose the number of harmonics using penalized likelihood to flexibly model circadian rhythms and to estimate the effect of covariates on the rhythms. We fit harmonic models to the cortisol circadian rhythm data presented by Wang et al. to illustrate our approach. Furthermore, we evaluate the properties of our procedure with a small simulation study. The proposed parametric approach provides an alternative to Wang et al.'s semiparametric approach and has the added advantage of being easy to implement in most statistical software packages.

摘要

王、柯和布朗(2003年,《生物统计学》59卷,804 - 812页)开发了一种基于平滑的方法,用于对具有随机效应的昼夜节律进行建模。他们的方法具有灵活性,固定和随机协变量都可以影响非参数平滑周期函数的振幅和相位偏移。在阐述他们的方法动机时,王等人指出简单的正弦函数限制过多。此外,他们还指出“虽然添加谐波可以改善拟合,但很难决定在模型中包含多少谐波,而且结果也难以解释”。我们不同意谐波模型不能成为纵向昼夜节律数据建模有用工具的观点。在本笔记中,我们展示了带有谐波项的非线性混合模型如何为王等人的方法提供一种简单且灵活的替代方案。我们展示了如何使用惩罚似然法选择谐波数量,以灵活地对昼夜节律进行建模,并估计协变量对节律的影响。我们将谐波模型应用于王等人给出的皮质醇昼夜节律数据,以说明我们的方法。此外,我们通过一个小型模拟研究评估了我们方法的性质。所提出的参数方法为王等人的半参数方法提供了一种替代方案,并且具有在大多数统计软件包中易于实现的额外优势。

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