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CollaborativeHealth: Smart Technologies to Surveil Outbreaks of Infectious Diseases Through Direct and Indirect Citizen Participation

机译:协作健康:通过直接和间接公民参与调查传染病爆发的智能技术

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Early warning systems are essential to mitigate the consequences of outbreaks of infectious diseases, which causes millions of deaths every year. Surveillance systems collect data on epidemic-prone diseases to trigger prompt public health interventions. In recent years, these systems have improved significantly thanks to infodemiology, a recent research field that promotes the use of health-data collected from the Internet. However, early warning systems can be improved regarding the interpretability and confidentiality of the compiled evidences. In addition, they still rely heavily on human intervention to distinguish among confident and non-confident evidences. To solve these concerns we present CollaborativeHealth, an infodemiology platform that compiles evidence from (1) social networks, (2) public reports, and (3) voluntary citizen participation; and makes use of deep-learning technologies to extract knowledge regarding infectious diseases, their symptoms, or poor environment conditions what promote the propagation of these diseases. Finally, all the compiled evidence is available to health-professionals in real-time through a configurable dashboard. The validation of CollaborativeHealth was performed with a real use-case about monitoring infectious disease cases related to Zika, Dengue, Chikungunya, and Influenza in Ecuador.
机译:预警系统对于减轻传染病爆发的后果至关重要,这导致每年数百万死亡。监测系统收集流行易发病的数据,以触发促使公共卫生干预措施。近年来,由于促进了从互联网收集的健康数据的使用,这些系统感谢Infodemiogy的兴高学显着提高。然而,关于编译证据的可解释性和机密性可以提高预警系统。此外,他们仍然严重依赖于人类干预,以区分自信和不自信的证据。要解决这些问题,我们提出了协作健康,这是一个汇集来自(1)社交网络,(2)公共报告的证据的Infodemiology平台,(3)自愿公民参与;并利用深受学习技术提取有关传染病,症状或贫困环境条件的知识,促进这些疾病的繁殖。最后,所有已编译的证据都可以通过可配置的仪表板实时地使用健康专业人士使用。对协作健康的验证是针对监测与Zika,登革热,Chikungunya和厄瓜多尔流感相关的传染病病例的真正用例进行。

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