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首页> 外文期刊>Biomedical Informatics Insights >Using n-Grams for Syndromic Surveillance in a Turkish Emergency Department without English Translation: A Feasibility Study:
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Using n-Grams for Syndromic Surveillance in a Turkish Emergency Department without English Translation: A Feasibility Study:

机译:在没有英语翻译的情况下,在土耳其急诊科中使用n克进行症状监测:一项可行性研究:

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摘要

Introduction: Syndromic surveillance is designed for early detection of disease outbreaks. An important data source for syndromic surveillance is free-text chief complaints (CCs), which are generally recorded in the local language. For automated syndromic surveillance, CCs must be classified into predefined syndromic categories. The n-gram classifier is created by using text fragments to measure associations between chief complaints (CC) and a syndromic grouping of ICD codes.
机译:简介:症状监测旨在早期发现疾病暴发。症状监测的重要数据来源是自由文本的主诉(CC),通常以当地语言记录。对于自动的症状监测,必须将CC分为预定义的症状类别。通过使用文本片段来度量主要投诉(CC)和ICD代码的综合分组之间的关联,来创建n-gram分类器。

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