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A framework for enhancing spatial and temporal granularity in report-based health surveillance systems

机译:在基于报告的健康监控系统中增强空间和时间粒度的框架

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摘要

BackgroundCurrent public concern over the spread of infectious diseases has underscored the importance of health surveillance systems for the speedy detection of disease outbreaks. Several international report-based monitoring systems have been developed, including GPHIN, Argus, HealthMap, and BioCaster. A vital feature of these report-based systems is the geo-temporal encoding of outbreak-related textual data. Until now, automated systems have tended to use an ad-hoc strategy for processing geo-temporal information, normally involving the detection of locations that match pre-determined criteria, and the use of document publication dates as a proxy for disease event dates. Although these strategies appear to be effective enough for reporting events at the country and province levels, they may be less effective at discovering geo-temporal information at more detailed levels of granularity. In order to improve the capabilities of current Web-based health surveillance systems, we introduce the design for a novel scheme called spatiotemporal zoning.
机译:背景技术当前公众对传染病传播的关注已经强调了健康监测系统对于迅速发现疾病暴发的重要性。已经开发了几种基于报告的国际监视系统,包括GPHIN,Argus,HealthMap和BioCaster。这些基于报告的系统的重要功能是与爆发相关的文本数据的地理时间编码。到目前为止,自动化系统已倾向于使用临时策略来处理地理时间信息,通常涉及检测与预定标准匹配的位置,并使用文档发布日期作为疾病事件日期的代理。尽管这些策略对于报告国家和省级的事件似乎足够有效,但是在更详细的粒度级别上发现地时信息可能不太有效。为了提高当前基于Web的健康监视系统的功能,我们介绍了一种称为时空分区的新颖方案的设计。

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