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协变量存在误差的时空模型:绘制俄亥俄州肺癌死亡率地图

Spatio-temporal models with errors in covariates: mapping Ohio lung cancer mortality.

作者信息

Xia H, Carlin B P

机构信息

Division of Biostatistics, School of Public Health, University of Minnesota, Minneapolis 55455-0392, USA.

出版信息

Stat Med. 1998 Sep 30;17(18):2025-43. doi: 10.1002/(sici)1097-0258(19980930)17:18<2025::aid-sim865>3.0.co;2-m.

Abstract

In estimating spatial disease patterns, as well as in related assessments of environmental equity, regional morbidity and mortality rate maps are widely used. Hierarchical Bayes methods are increasingly popular tools for creating such maps, since they permit smoothing of the fitted rates toward spatially local mean values, with more unreliable estimates (those arising in low-population regions) receiving more smoothing. In this paper we blend methods for spatial-temporal mapping with those for handling errors in covariates in a single hierarchical model framework. Estimated posterior distributions for the resulting highly-parameterized models are obtained via Markov chain Monte Carlo (MCMC) methods, which also play a key role in our approach to model evaluation and selection. We apply our approach to a data set of county-specific lung cancer rates in the state of Ohio during the period 1968-1988. Our model uses age-adjusted death rates, and incorporates recent information regarding smoking prevalence, population density, and the socio-economic status of the counties. This information is critical to understanding the role played by a certain depleted uranium fuel processing facility on the elevated lung cancer rates in the counties that neighbour it.

摘要

在估计疾病的空间分布模式以及进行相关的环境公平性评估时,区域发病率和死亡率地图被广泛使用。分层贝叶斯方法是创建此类地图越来越常用的工具,因为它们允许将拟合率平滑到空间局部均值,估计不太可靠的(在低人口地区出现的)值会得到更多的平滑处理。在本文中,我们在一个单一的分层模型框架中将时空映射方法与处理协变量误差的方法结合起来。通过马尔可夫链蒙特卡罗(MCMC)方法获得由此产生的高度参数化模型的估计后验分布,MCMC方法在我们的模型评估和选择方法中也起着关键作用。我们将我们的方法应用于1968 - 1988年期间俄亥俄州特定县肺癌发病率的数据集。我们的模型使用年龄调整后的死亡率,并纳入了有关吸烟率、人口密度以及各县社会经济状况的最新信息。这些信息对于理解某贫铀燃料加工设施对其周边县肺癌发病率升高所起的作用至关重要。

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