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Investigating the association between sociodemographic factors and lung cancer risk using cyber informatics

机译:使用网络信息学调查社会人口统计学因素与肺癌风险之间的关联

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Openly available online sources can be very valuable for executing in silico case-control epidemiological studies. Adjustment of confounding factors to isolate the association between an observing factor and disease is essential for such studies. However, such information is not always readily available online. This paper suggests natural language processing methods for extracting socio-demographic information from content openly available online. Feasibility of the suggested method is demonstrated by performing a case-control study focusing on the association between age, gender, and income level and lung cancer risk. The study shows stronger association between older age and lower socioeconomic status and higher lung cancer risk, which is consistent with the findings reported in traditional cancer epidemiology studies.
机译:公开可用的在线资源对于进行计算机病例控制流行病学研究可能非常有价值。调整混杂因素以隔离观察因素与疾病之间的关联对于此类研究至关重要。但是,此类信息并不总是可以随时在线获得。本文提出了一种自然语言处理方法,用于从可在线公开获取的内容中提取社会人口统计信息。通过进行病例对照研究,证明该方法的可行性,该研究关注年龄,性别,收入水平与肺癌风险之间的关联。该研究表明,老年人与较低的社会经济地位和较高的肺癌风险之间存在更强的联系,这与传统癌症流行病学研究报告的发现相符。

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