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HealthMap: global infectious disease monitoring through automated classification and visualization of Internet media reports.

机译:HealthMap:通过互联网媒体报告的自动分类和可视化对全球传染病进行监控。

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OBJECTIVE: Unstructured electronic information sources, such as news reports, are proving to be valuable inputs for public health surveillance. However, staying abreast of current disease outbreaks requires scouring a continually growing number of disparate news sources and alert services, resulting in information overload. Our objective is to address this challenge through the HealthMap.org Web application, an automated system for querying, filtering, integrating and visualizing unstructured reports on disease outbreaks. DESIGN: This report describes the design principles, software architecture and implementation of HealthMap and discusses key challenges and future plans. MEASUREMENTS: We describe the process by which HealthMap collects and integrates outbreak data from a variety of sources, including news media (e.g., Google News), expert-curated accounts (e.g., ProMED Mail), and validated official alerts. Through the use of text processing algorithms, the system classifies alerts by location and disease and then overlays them on an interactive geographic map. We measure the accuracy of the classification algorithms based on the level of human curation necessary to correct misclassifications, and examine geographic coverage. RESULTS: As part of the evaluation of the system, we analyzed 778 reports with HealthMap, representing 87 disease categories and 89 countries. The automated classifier performed with 84% accuracy, demonstrating significant usefulness in managing the large volume of information processed by the system. Accuracy for ProMED alerts is 91% compared to Google News reports at 81%, as ProMED messages follow a more regular structure. CONCLUSION: HealthMap is a useful free and open resource employing text-processing algorithms to identify important disease outbreak information through a user-friendly interface.
机译:目的:事实证明,非结构化电子信息源(例如新闻报道)对于公共卫生监视是有价值的输入。但是,要与当前疾病爆发保持同步,就需要寻找数量不断增长的不同新闻来源和警报服务,从而导致信息过载。我们的目标是通过HealthMap.org Web应用程序来应对这一挑战,该应用程序是用于查询,过滤,集成和可视化疾病爆发的非结构化报告的自动化系统。设计:本报告描述了HealthMap的设计原则,软件体系结构和实现,并讨论了主要挑战和未来计划。度量:我们描述了HealthMap从各种来源收集和集成爆发数据的过程,包括新闻媒体(例如Google News),专家管理的帐户(例如ProMED Mail)和经过验证的官方警报。通过使用文本处理算法,系统可以根据位置和疾病对警报进行分类,然后将其覆盖在交互式地理地图上。我们根据纠正错误分类所必需的人工管理水平来评估分类算法的准确性,并检查地理覆盖范围。结果:作为该系统评估的一部分,我们使用了HealthMap分析了778个报告,这些报告代表了89个国家的87个疾病类别。自动化分类器的准确度为84%,证明了在管理系统处理的大量信息方面的巨大用处。 ProMED警报的准确性为91%,而Google新闻报道的准确性为81%,因为ProMED消息遵循更常规的结构。结论:HealthMap是一种有用的免费开放资源,采用文本处理算法通过用户友好的界面识别重要的疾病暴发信息。

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