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使用地理加性分类回归模型分析婴儿死亡率:尼日利亚的案例研究

Analyzing infant mortality with geoadditive categorical regression models: a case study for Nigeria.

作者信息

Adebayo Samson B, Fahrmeir Ludwig, Klasen Stephan

机构信息

Department of Statistics, University of Munich, Ludwigstrasse 33, D-80539 Munich, Germany.

出版信息

Econ Hum Biol. 2004 Jun;2(2):229-44. doi: 10.1016/j.ehb.2004.04.004.

Abstract

In this paper, we analyze infant mortality in Nigeria based on the data set from the 1999 Nigeria Demographic and Health Survey (NDHS). We investigate spatial patterns at a highly disaggregated level of Nigerian states and consider non-linear effects of mother's age at birth. Time to the occurrence of a child's death can intuitively be considered to be categorical in nature and the determinants of a child's death may differ in different age groups. Thus, it may be desirable to investigate separately the death of a child in the first month and in the remaining 11 months of the first year of life. To avoid selection bias, the data set used for this case study is based on information on children who were born 12 months preceding the survey. Inference is Bayesian and is based on Markov chain Monte Carlo (MCMC) techniques. We find that spatial variation and the determinants of death indeed differ considerably for the two age groups considered.

摘要

在本文中,我们基于1999年尼日利亚人口与健康调查(NDHS)的数据集,对尼日利亚的婴儿死亡率进行分析。我们在尼日利亚各州高度细分的层面上研究空间模式,并考虑母亲生育时年龄的非线性影响。孩子死亡发生的时间直观上可被视为具有类别性质,且孩子死亡的决定因素在不同年龄组中可能有所不同。因此,分别研究婴儿出生后第一个月以及第一年其余11个月内的死亡情况可能是可取的。为避免选择偏差,本案例研究使用的数据集基于调查前12个月出生儿童的信息。推断采用贝叶斯方法,并基于马尔可夫链蒙特卡罗(MCMC)技术。我们发现,对于所考虑的两个年龄组,空间差异和死亡决定因素确实有很大不同。

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