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Spatial Modelling to Inform Public Health Based on Health Surveys: Impact of Unsampled Areas at Lower Geographical Scale

机译:基于健康调查的公共卫生信息化空间模型:较低地理尺度下未采样区域的影响

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摘要

Small area estimation is an important tool to provide area-specific estimates of population characteristics for governmental organizations in the context of education, public health and care. However, many demographic and health surveys are unrepresentative at a small geographical level, as often areas at a lower level are not included in the sample due to financial or logistical reasons. In this paper, we investigated (1) the effect of these unsampled areas on a variety of design-based and hierarchical model-based estimates and (2) the benefits of using auxiliary information in the estimation process by means of an extensive simulation study. The results showed the benefits of hierarchical spatial smoothing models towards obtaining more reliable estimates for areas at the lowest geographical level in case a spatial trend is present in the data. Furthermore, the importance of auxiliary information was highlighted, especially for geographical areas that were not included in the sample. Methods are illustrated on the 2008 Mozambique Poverty and Social Impact Analysis survey, with interest in the district-specific prevalence of school attendance.
机译:小面积估算是在教育,公共卫生和护理领域为政府组织提供特定地区人口特征估算的重要工具。但是,许多人口统计和健康调查在较小的地理级别上是没有代表性的,因为由于财务或后勤原因,样本中通常不包括较低级别的区域。在本文中,我们研究了(1)这些未采样区域对各种基于设计和基于层次模型的估计的影响,以及(2)通过广泛的仿真研究在估计过程中使用辅助信息的好处。结果表明,如果数据中存在空间趋势,则分层空间平滑模型对于获得最低地理级别区域的更可靠估计值的好处。此外,强调了辅助信息的重要性,特别是对于样本中未包括的地理区域。方法在2008年莫桑比克贫困与社会影响分析调查中得到了说明,并对各地区的入学率感兴趣。

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