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A Dictionary-based Method for Detecting Anomalous Chief Complaint Text in Individual Records

机译:基于字典的个人记录中异常主投诉文本的检测方法

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The success of syndromic surveillance depends on the ability of the surveillance community to quickly and accurately recognize anomalous data. Current methods of anomaly detection focus on sets of syndromic categories and rely on a priori knowledge to map chief complaints to these general syndromic categories. As a result, the mapping scheme may miss key terms and phrases that have not previously been used. Furthermore, analysts do not have a good way of being alerted to these new terms in order to determine if they should be added to the syndromic mapping schema. We use a dynamic dictionary of terms to side-step the downfalls of a priori knowledge in this rapidly evolving field by alerting the analyst to rare and brand new words used in the chief complaint field.
机译:症状监视的成功取决于监视社区快速,准确地识别异常数据的能力。当前的异常检测方法着重于症状类别的集合,并依靠先验知识将主要投诉映射到这些一般症状类别。结果,映射方案可能会错过以前未使用过的关键术语和短语。此外,分析人员没有很好的方式警惕这些新术语,以确定是否应将它们添加到症状映射方案中。我们使用动态术语词典,通过提醒分析人员注意主要投诉领域中使用的稀有和崭新单词,来避免该快速发展领域中先验知识的失败。

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