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Use abstracted patient-specific features to assist an information-theoretic measurement to assess similarity between medical cases

机译:使用抽象的特定于患者的功能来辅助信息理论测量以评估医疗案例之间的相似性

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摘要

Inter-case similarity metrics can potentially help find similar cases from a case base for evidence-based practice. While several methods to measure similarity between cases have been proposed, developing an effective means for measuring patient case similarity remains a challenging problem. We were interested in examining how abstracting could potentially assist computing case similarity. In this study, abstracted patient-specific features from medical records were used to improve an existing information-theoretic measurement. The developed metric, using a combination of abstracted disease, finding, procedure and medication features, achieved a correlation between 0.6012 and 0.6940 to experts.
机译:案例间的相似性指标可以潜在地帮助从案例库中找到基于证据的做法的相似案例。虽然已经提出了几种测量病例之间相似性的方法,但是开发一种有效的方法来测量患者病例相似性仍然是一个具有挑战性的问题。我们对研究抽象如何可能有助于计算案例相似性感兴趣。在这项研究中,从病历中提取了特定于患者的特征,以改进现有的信息理论测量方法。通过结合抽象疾病,发现,程序和用药特征,开发出的指标对专家而言达到了0.6012和0.6940之间的相关性。

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