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A SEMIPARAMETRIC MODEL FOR CLUSTER DATA

机译:集群数据的半参数模型

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摘要

In the analysis of cluster data, the regression coefficients are frequently assumed to be the same across all clusters. This hampers the ability to study the varying impacts of factors on each cluster. In this paper, a semiparametric model is introduced to account for varying impacts of factors over clusters by using cluster-level covariates. It achieves the parsimony of parametrization and allows the explorations of nonlinear interactions. The random effect in the semiparametric model also accounts for within-cluster correlation. Local, linear-based estimation procedure is proposed for estimating functional coefficients, residual variance and within-cluster correlation matrix. The asymptotic properties of the proposed estimators are established, and the method for constructing simultaneous confidence bands are proposed and studied. In addition, relevant hypothesis testing problems are addressed. Simulation studies are carried out to demonstrate the methodological power of the proposed methods in the finite sample. The proposed model and methods are used to analyse the second birth interval in Bangladesh, leading to some interesting findings.
机译:在聚类数据分析中,经常假设回归系数在所有聚类中都相同。这阻碍了研究因素对每个集群的变化影响的能力。在本文中,引入了半参数模型,以通过使用聚类级协变量解决因素对聚类的影响。它实现了参数化的简约性,并允许探索非线性相互作用。半参数模型中的随机效应也说明了集群内相关性。提出了基于局部,线性的估计程序,用于估计功能系数,残差和簇内相关矩阵。建立了所提出估计量的渐近性质,并提出并研究了同时建立置信带的方法。此外,还解决了相关的假设检验问题。进行了仿真研究,以证明所提出方法在有限样本中的方法学功效。所提出的模型和方法用于分析孟加拉国的第二胎间隔,从而得出一些有趣的发现。

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