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Impact of estimation techniques on regression analysis: an application to survey data on child nutritional status in five African countries

机译:估算技术对回归分析的影响:调查五个非洲国家儿童营养状况数据的应用

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摘要

This paper illustrates the impact of ignoring survey design and hierarchical structure of survey data when fitting regression models. Data on child nutritional status from Ghana, Malawi, Tanzania, Zambia, and Zimbabwe are analysed using four techniques: ordinary least squares; weighted regression using standard statistical software; regression using specialist software that accounts for the survey design; and multilevel modelling. The impact of ignoring survey design on logistic and linear regression models is examined. The results show bias in estimates averaging between five and 17 per cent in linear models and between five and 22 per cent in logistic regression models. The standard errors are also under-estimated by up to 49 per cent in some countries. Socio-economic variables and service utilisation variables are poorly estimated when the survey design is ignored.
机译:本文说明了在拟合回归模型时忽略调查设计和调查数据层次结构的影响。使用四种技术分析了来自加纳,马拉维,坦桑尼亚,赞比亚和津巴布韦的儿童营养状况数据。使用标准统计软件进行加权回归;使用负责调查设计的专业软件进行回归;和多层建模。研究了忽略调查设计对逻辑和线性回归模型的影响。结果表明,线性模型的估计平均偏差为5%至17%,逻辑回归模型的估计平均偏差为5%至22%。在某些国家,标准误也被低估了多达49%。当忽略调查设计时,对社会经济变量和服务利用变量的估计很差。

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