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Classification of risk areas using a bootstrap-aggregated ensemble approach for reducing Zika virus infection in pregnant women

机译:利用Bootstrap聚合的集合方法进行风险区域的分类,用于减少孕妇中的Zika病毒感染

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The Zika (ZIKV) virus has been a potential cause for the birth of children with microcephaly. This situation is unprecedented all over the world, presenting a small number of records in the medical literature. The latest ZIKV epidemic confirms the potential risk of international propagation of mosquito-borne diseases, especially the Aedes albopictus and aegypti species. Therefore, a strategy that aims to define priority areas for intervention is critical to contributing to the prevention and control of these diseases. Hence, this paper proposes the use of an ensemble learning technique, named bootstrap-aggregated ensemble of fine decision trees, to identify epidemic risk areas, reducing its impact on the population, principally in pregnant women. The study analyzed reported cases of ZIKV (n = 112) in Recife, Brazil, during 2015 and 2016. The identification of mosquito activity areas can guarantee a healthy formation for the fetus during and after the gestation through implementation strategies of public policies and further study to control the mosquito vector responsible for these diseases. (C) 2019 Elsevier B.V. All rights reserved.
机译:Zika(Zikv)病毒一直是患儿患有微型术语的潜在原因。这种情况遍布全球,展出了医学文献的少数记录。最新的ZIKV流行病证实了蚊子传播疾病国际传播的潜在风险,特别是AEDES ALPOPICTUS和AEGYPTI物种。因此,旨在确定干预优先级领域的策略对于为预防和控制这些疾病而言是至关重要的。因此,本文建议使用集合学习技术,命名为单判集树木的联合汇总集合,以识别流行病风险区域,从而降低其对人口的影响,主要是孕妇。该研究分析了在2015年和2016年期间累累累累累累的Zikv(n = 112)报告的Zikv(n = 112)案例。通过公共政策的实施策略和进一步研究的妊娠期和之后,蚊虫活动区域的识别可以保证胎儿健康的形成控制负责这些疾病的蚊子矢量。 (c)2019 Elsevier B.v.保留所有权利。

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