使用过滤关联规则网络自动识别公共数据库中Piauí状态下登革热病例相关知识

Joan D. S. Silva, Jâina Carolina Meneses Calçada, S. O. Rezende, D. Calçada
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摘要

登革热自1980年代以来在巴西是一种地方病,1996年以来在庇乌尼维亚也是一种地方病。病例数量每年都在增加,症状更加严重。这项研究旨在评估在与登革热发病数量有关的因素中使用自动知识识别技术的情况。我们建立了一个数据集,该数据集由法定传染病信息系统(SINAN)提供的数据和沿海平原比乌乌伊市的气象数据组成。使用的技术是过滤关联规则网络,它允许通过使用网络结构和规则过滤对知识进行可视化分析。作为主要结果,我们确认了这样一种理解,即5月份的病例数量最多,因为这是降雨指数减少的时刻,此外,社会文化和种族因素不会干扰对高危人群的识别。这项研究提出了使用自动知识发现的计算技术的创新,可以通过流行病学监测协助制定预防行动。
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Automatic identification of knowledge related to dengue cases in the state of Piauí in public databases using Filtered-Association Rules Networks
Dengue is an endemic disease in Brazil since the 1980s and since 1996 in Piau ́ı. The number of cases increases each year, with the incidence of more severe symptoms. This research aimed to evaluate the use of an automatic knowledge identification technique in factors related to the number of dengue occurrences. We built a dataset formed by data available in the Information System for Notifiable Diseases (SINAN) and meteorological data of the municipalities of the coastal plain of Piau ́ı. The technique used was that of Filtered Association Rules Networks, which allows visual analysis of knowledge through the use of network structures and rules filtering. As a main result, we confirmed the understanding that the most significant number of cases occurs in May, as it is the moment when the rainfall indexes are decreasing, besides that socio-cultural and race factors do not interfere in the identification of the population of higher risk. This research presents the innovation of the use of a computational technique of automatic knowledge discovery that can assist in the elaboration of prevention actions by epidemiological surveillance.
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