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Towards a 'Big' Health Data Analytics Platform

机译:迈向“大”健康数据分析平台

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摘要

Health is generating large volumes of data that can provide invaluable insights into clinical and operational aspects of healthcare delivery. There is a general lack of specialized and integrated health data analytics platforms that offer technical methods to support the entire health data analysis pipeline -- i.e. health data selection, integration, analysis, visualization and sharing. This paper proposes the technical architecture of a health data analytics platform that offers a technical solution for analyzing 'big' health data originating from multiple sources with heterogeneous terminologies and schemas. A key aspect of the architecture is data standardization, where we have used SNOMED-CT as a terminology standard to standardize health data from multiple sources. We offer a single step health data integration solution where users can select the data sources and the data elements from multiple sources, and our platform performs the data standardization and data integration to prepare an integrated dataset. We present a case study involving large volumes of laboratory data that is integrated and analyzed using our platform.
机译:健康正在生成大量数据,这些数据可以提供有关医疗保健交付的临床和运营方面的宝贵见解。普遍缺乏专门和集成的健康数据分析平台来提供支持整个健康数据分析管道的技术方法-即健康数据选择,集成,分析,可视化和共享。本文提出了健康数据分析平台的技术架构,该平台提供了一种技术解决方案,用于分析来自具有多种术语和模式的多个来源的“大”健康数据。该体系结构的一个关键方面是数据标准化,其中我们使用SNOMED-CT作为术语标准来标准化来自多个来源的健康数据。我们提供了一步式健康数据集成解决方案,用户可以从中选择数据源和数据元素,并且我们的平台执行数据标准化和数据集成以准备集成的数据集。我们提供了一个案例研究,涉及使用我们平台进行集成和分析的大量实验室数据。

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