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A Textual Recommender System for Clinical Data

机译:临床数据的文本推荐系统

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When faced with an exceptional clinical case, doctors like to review information about similar patients to guide their decision-making. Retrieving relevant cases, however, is a hard and time-consuming task: Hospital databases of free-text physician letters provide a rich resource of information but are usually only searchable with string-matching methods. Here, we present a recommender system that automatically finds physician letters similar to a specified reference letter using an information retrieval procedure. We use a small-scale, prototypical dataset to compare the system's recommendations with physicians' similarity judgments of letter pairs in a psychological experiment. The results show that the recommender system captures expert intuitions about letter similarity well and is usable for practical applications.
机译:当面对特殊的临床病例时,医生喜欢查看有关类似患者的信息以指导他们的决策。但是,检索相关案例是一项艰巨且耗时的任务:医院的自由文本医师信件数据库提供了丰富的信息资源,但通常只能使用字符串匹配方法进行搜索。在这里,我们介绍一种推荐系统,该系统使用信息检索程序自动查找与指定参考字母相似的医师字母。我们使用一个小型的原型数据集,将该系统的建议与医师在心理实验中对字母对的相似性判断进行比较。结果表明,该推荐系统很好地捕捉了有关字母相似度的专家直觉,可用于实际应用。

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