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具有随机效应的k分量泊松混合模型的最小Hellinger距离估计

Minimum Hellinger distance estimation for k-component poisson mixture with random effects.

作者信息

Xiang Liming, Yau Kelvin K W, Van Hui Yer, Lee Andy H

机构信息

Department of Management Sciences, City University of Hong Kong, Hong Kong.

出版信息

Biometrics. 2008 Jun;64(2):508-18. doi: 10.1111/j.1541-0420.2007.00920.x. Epub 2007 Oct 26.

Abstract

The k-component Poisson regression mixture with random effects is an effective model in describing the heterogeneity for clustered count data arising from several latent subpopulations. However, the residual maximum likelihood estimation (REML) of regression coefficients and variance component parameters tend to be unstable and may result in misleading inferences in the presence of outliers or extreme contamination. In the literature, the minimum Hellinger distance (MHD) estimation has been investigated to obtain robust estimation for finite Poisson mixtures. This article aims to develop a robust MHD estimation approach for k-component Poisson mixtures with normally distributed random effects. By applying the Gaussian quadrature technique to approximate the integrals involved in the marginal distribution, the marginal probability function of the k-component Poisson mixture with random effects can be approximated by the summation of a set of finite Poisson mixtures. Simulation study shows that the MHD estimates perform satisfactorily for data without outlying observation(s), and outperform the REML estimates when data are contaminated. Application to a data set of recurrent urinary tract infections (UTI) with random institution effects demonstrates the practical use of the robust MHD estimation method.

摘要

具有随机效应的k分量泊松回归混合模型是描述由多个潜在亚群产生的聚类计数数据异质性的有效模型。然而,回归系数和方差分量参数的残差最大似然估计(REML)往往不稳定,在存在异常值或极端污染的情况下可能导致误导性推断。在文献中,已经研究了最小Hellinger距离(MHD)估计以获得有限泊松混合模型的稳健估计。本文旨在为具有正态分布随机效应的k分量泊松混合模型开发一种稳健的MHD估计方法。通过应用高斯求积技术来近似边际分布中涉及的积分,具有随机效应的k分量泊松混合模型的边际概率函数可以通过一组有限泊松混合模型的求和来近似。模拟研究表明,MHD估计对于没有异常观测的数据表现令人满意,并且在数据受到污染时优于REML估计。将其应用于具有随机机构效应的复发性尿路感染(UTI)数据集,证明了稳健MHD估计方法的实际应用。

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