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Automatic classification of diseases from free-text death certificates for real-time surveillance

机译:从自由文本死亡证书自动分类疾病以进行实时监控

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摘要

BackgroundDeath certificates provide an invaluable source for mortality statistics which can be used for surveillance and early warnings of increases in disease activity and to support the development and monitoring of prevention or response strategies. However, their value can be realised only if accurate, quantitative data can be extracted from death certificates, an aim hampered by both the volume and variable nature of certificates written in natural language. This study aims to develop a set of machine learning and rule-based methods to automatically classify death certificates according to four high impact diseases of interest: diabetes, influenza, pneumonia and HIV.
机译:背景死亡证书为死亡率统计提供了宝贵的资源,可用于监测疾病活动增加的预警和预警,并支持制定和监测预防或应对策略。但是,只有从死亡证明书中提取准确,定量的数据,才能实现其价值,这一目标受到以自然语言编写的证明书的数量和可变性的双重阻碍。这项研究旨在开发一套基于机器学习和基于规则的方法,以根据四种重要的重要疾病(糖尿病,流感,肺炎和艾滋病毒)自动对死亡证书进行分类。

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