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Toward a Learning Health-care System – Knowledge Delivery at the Point of Care Empowered by Big Data and NLP

机译:迈向学习型医疗保健系统-由大数据和NLP支持的医疗点知识交付

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摘要

The concept of optimizing health care by understanding and generating knowledge from previous evidence, ie, the Learning Health-care System (LHS), has gained momentum and now has national prominence. Meanwhile, the rapid adoption of electronic health records (EHRs) enables the data collection required to form the basis for facilitating LHS. A prerequisite for using EHR data within the LHS is an infrastructure that enables access to EHR data longitudinally for health-care analytics and real time for knowledge delivery. Additionally, significant clinical information is embedded in the free text, making natural language processing (NLP) an essential component in implementing an LHS. Herein, we share our institutional implementation of a big data-empowered clinical NLP infrastructure, which not only enables health-care analytics but also has real-time NLP processing capability. The infrastructure has been utilized for multiple institutional projects including the MayoExpertAdvisor, an individualized care recommendation solution for clinical care. We compared the advantages of big data over two other environments. Big data infrastructure significantly outperformed other infrastructure in terms of computing speed, demonstrating its value in making the LHS a possibility in the near future.
机译:通过理解和从先前的证据中获取知识来优化医疗保健的概念,即学习医疗保健系统(LHS),已经获得了动力,并且现在已经举世瞩目。同时,电子健康记录(EHR)的快速采用使所需的数据收集成为促进LHS的基础。在LHS中使用EHR数据的先决条件是可以纵向访问EHR数据进行医疗保健分析并实时进行知识传递的基础架构。此外,大量的临床信息嵌入在自由文本中,使自然语言处理(NLP)成为实施LHS的基本组成部分。在这里,我们分享了我们在大数据驱动的临床NLP基础架构上的机构实施,该基础架构不仅支持医疗保健分析,而且具有实时NLP处理能力。该基础架构已用于多个机构项目,包括MayoExpertAdvisor,这是一种用于临床护理的个性化护理推荐解决方案。我们比较了大数据相对于其他两个环境的优势。大数据基础架构在计算速度方面明显优于其他基础架构,证明了其在不久的将来使LHS成为可能的价值。

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