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Linear hypothesis testing for weighted functional data with applications

机译:用应用程序加权功能数据的线性假设检测

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摘要

In socioeconomic areas, functional observations may be collected with weights, called weighted functional data. In this paper, we deal with a general linear hypothesis testing (GLHT) problem in the framework of functional analysis of variance withweighted functional data. With weights taken into account, we obtain unbiased and consistent estimators of the group mean and covariance functions. For the GLHT problem, we obtain a pointwise F-test statistic and build two global tests, respectively, via integrating the pointwise F-test statistic or taking its supremum over an interval of interest. The asymptotic distributions of test statistics under the null and some local alternatives are derived. Methods for approximating their null distributions are discussed. An application of the proposed methods to density function data is also presented. Intensive simulation studies and two real data examples show that the proposed tests outperform the existing competitors substantially in terms of size control and power.
机译:在社会经济区域中,可以用重量收集功能性观察,称为加权功能数据。在本文中,我们在具有重量函数数据的差异框架框架中处理一般线性假设检测(GLHT)问题。考虑到重量,我们获得了集团均值和协方差函数的非偏见和一致的估计。对于GLHT问题,我们可以通过将尖端F-TEST统计信息集成在感兴趣的时间间隔内,以POSESIVE F-TEST统计和构建两个全局测试分别构建两个全局测试。派生了NULL和一些本地替代品下的测试统计的渐近分布。讨论了近似其空分布的方法。还介绍了所提出的函数数据的应用方法。密集型仿真研究和两个实际数据示例表明,所提出的测试在规模控制和权力方面显着优于现有的竞争对手。

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