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A Semantic-Based EMRs Integration Framework for Diagnosis Decision-Making

机译:基于语义的EMRS诊断决策集成框架

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Discovering latent information from Electronic Medical Records (EMRs) for guiding diagnosis decision making is a hot issue in the era of big data. An EMR composes of various data (e.g., patient information, medical history, diagnosis, treatments, symptoms), but most of them are stored in the relational database. It is difficult to integrate the data and infer new knowledge based on existing data structures. Semantic technology (ST) is a flexible and scalable method for integrating heterogeneous, distributed information from big data. Taking advantage of these features, this paper proposes a framework that leverages ontology to improve EMRs decision-making. A case study shows that this framework is feasible to integrate information, and can provide specific and personalized information services for facilitating medical diagnosis.
机译:从电子医疗记录(EMRS)中发现指导诊断决策的潜在信息是大数据时代的一个热门问题。 EMR由各种数据组成(例如,患者信息,病史,诊断,治疗,症状),但大多数存储在关系数据库中。很难根据现有数据结构集成数据和推断新知识。语义技术(ST)是一种从大数据集成异构,分布式信息的灵活且可扩展的方法。利用这些功能,本文提出了一种利用本体来改善EMRS决策的框架。案例研究表明,该框架可以集成信息,可以为促进医学诊断提供特定和个性化的信息服务。

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