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Data Blindspots: High-Tech Disease Surveillance Misses the Poor

机译:数据盲点:高科技疾病监测差强人意

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摘要

Influenza hospitalizations are positively associated with poverty. Therefore, individuals in lower socioeconomic brackets are considered to be members of at-risk populations. With the goal of improving situational awareness, we developed a framework for combining multiple data sources to predict at-risk hospitalizations. The data sources considered were: emergency departments, primary health care providers, and Google Flu Trends. We demonstrate that out-of-sample performance was lowest in the most at-risk zip codes, which identifies a key data blindspot, highlights the importance of understanding the dynamics of influenza in at-risk populations, and reveals the far-reaching public health consequences of restricted access to health care.
机译:流感住院与贫困成正比。因此,处于社会经济地位较低的人群被视为高危人群。为了提高对态势的意识,我们开发了一个框架,用于组合多个数据源以预测有风险的住院治疗。考虑的数据源为:急诊科,初级卫生保健提供者和Google流感趋势。我们证明,在最具风险的邮政编码中,样本外性能最低,它标识了关键数据盲点,突出了了解高风险人群中流感动态的重要性,并揭示了影响深远的公共卫生无法获得医疗保健的后果。

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