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The application of subset correspondence analysis to address the problem of missing data in a study on asthma severity in childhood

机译:在儿童哮喘严重程度研究中,子集对应分析在解决数据丢失问题中的应用

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摘要

Non-response in cross-sectional data is not uncommon and requires careful handling during the analysis stage so as not to bias results. In this paper, we illustrate how subset correspondence analysis can be applied in order to manage the non-response while at the same time retaining all observed data. This variant of correspondence analysis was applied to a set of epidemiological data in which relationships between numerous environmental, genetic, behavioural and socio-economic factors and their association with asthma severity in children were explored. The application of subset correspondence analysis revealed interesting associations between the measured variables that otherwise may not have been exposed. Many of the associations found confirm established theories found in literature regarding factors that exacerbate childhood asthma. Moderate to severe asthma was found to be associated with needing neonatal care, male children, 8- to 9-year olds, exposure to tobacco smoke in vehicles and living in areas that suffer from extreme air pollution. Associations were found between mild persistent asthma and low birthweight, and being exposed to smoke in the home and living in a home with up to four people. The classification of probable asthma was associated with a group of variables that indicate low socio-economic status.
机译:横截面数据不响应的情况并不少见,需要在分析阶段进行仔细处理,以免影响结果。在本文中,我们说明了如何应用子集对应分析以管理无响应,同时保留所有观察到的数据。对应分析的这种变体被应用于一组流行病学数据,其中探索了许多环境,遗传,行为和社会经济因素之间的关系以及它们与儿童哮喘严重程度的关系。子集对应分析的应用揭示了被测变量之间可能存在的有趣关联,这些关联否则可能不会被公开。发现的许多协会证实了文献中关于加剧儿童哮喘的因素的既定理论。中度至重度哮喘与需要新生儿护理,8至9岁的男孩,接触车辆的烟草烟雾以及居住在空气污染严重的地区有关。发现与轻度持续性哮喘和低出生体重之间存在关联,该关联在家庭中暴露于烟雾中并且居住在最多可容纳4人的家庭中。可能的哮喘分类与一组指示低社会经济地位的变量相关。

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