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Likelihood Ratio Tests for Dependent Data with Applications to Longitudinal and Functional Data Analysis

机译:相关数据的似然比检验及其在纵向和功能数据分析中的应用

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This paper introduces a general framework for testing hypotheses about the structure of the mean function of complex functional processes. Important particular cases of the proposed framework are as follows: (1) testing the null hypothesis that the mean of a functional process is parametric against a general alternative modelled by penalized splines; and (2) testing the null hypothesis that the means of two possibly correlated functional processes are equal or differ by only a simple parametric function. A global pseudo-likelihood ratio test is proposed, and its asymptotic distribution is derived. The size and power properties of the test are confirmed in realistic simulation scenarios. Finite-sample power results indicate that the proposed test is much more powerful than competing alternatives. Methods are applied to testing the equality between the means of normalized S -power of sleep electroencephalograms of subjects with sleep-disordered breathing and matched controls.
机译:本文介绍了一个用于测试关于复杂功能过程的平均功能结构的假设的通用框架。拟议框架的重要特殊情况如下:(1)测试零假设,即功能过程的均值与受罚样条建模的一般替代参数相关。 (2)检验零假设,即两个可能相关的功能过程的均值仅通过一个简单的参数函数就相等或不同。提出了一种全局拟似然比检验方法,并推导了其渐近分布。测试的大小和功率属性在真实的模拟场景中得到确认。有限样本的功效结果表明,所提出的测试比竞争产品具有更强大的功能。方法适用于测试呼吸紊乱的受试者和相匹配的对照组的标准化脑电图睡眠脑电图的均值。

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