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Prediction of Peaks of Seasonal Influenza in Military Health-Care Data: Supplementary Issue: Big Data Analytics for Health

机译:军事保健数据中季节性流感高峰的预测:补充问题:卫生大数据分析

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Influenza is a highly contagious disease that causes seasonal epidemics with significant morbidity and mortality. The ability to predict influenza peak several weeks in advance would allow for timely preventive public health planning and interventions to be used to mitigate these outbreaks. Because influenza may also impact the operational readiness of active duty personnel, the US military places a high priority on surveillance and preparedness for seasonal outbreaks. A method for creating models for predicting peak influenza visits per total health-care visits (ie, activity) weeks in advance has been developed using advanced data mining techniques on disparate epidemiological and environmental data. The model results are presented and compared with those of other popular data mining classifiers. By rigorously testing the model on data not used in its development, it is shown that this technique can predict the week of highest influenza activity for a specific region with overall better accuracy than other methods examined in this article.
机译:流行性感冒是一种高度传染性疾病,会导致季节性流行病,且发病率和死亡率都很高。提前几周预测流感高峰的能力将有助于及时进行预防性公共卫生计划和干预措施,以减轻这些疾病的爆发。由于流感也可能影响现役人员的战备状态,因此美军高度重视季节性爆发的监视和防备。已经使用针对不同的流行病学和环境数据的高级数据挖掘技术,开发了一种用于创建模型的方法,该模型可以提前预测每周总卫生保健就诊(即活动)的高峰流感就诊数。给出了模型结果,并将其与其他流行的数据挖掘分类器进行了比较。通过在未使用其开发的数据上严格测试该模型,结果表明,该技术可以预测特定区域最高流感活动的一周,其总体准确性要比本文中研究的其他方法高。

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