Building a robust, scalable and standards-driven infrastructure for secondary use of EHR data: The SHARPn project

[Display omitted] ► Innovative technologies to accelerate meaningful use of health care IT are described. ► The SHARPn team is developing an open-source framework for EHR data interoperability. ► Parallel development of tools for patient phenotyping uses standardized EHR data. ► Disparate EHR data w...

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Veröffentlicht in:Journal of biomedical informatics 2012-08, Vol.45 (4), p.763-771
Hauptverfasser: Rea, Susan, Pathak, Jyotishman, Savova, Guergana, Oniki, Thomas A., Westberg, Les, Beebe, Calvin E., Tao, Cui, Parker, Craig G., Haug, Peter J., Huff, Stanley M., Chute, Christopher G.
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Sprache:eng
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Zusammenfassung:[Display omitted] ► Innovative technologies to accelerate meaningful use of health care IT are described. ► The SHARPn team is developing an open-source framework for EHR data interoperability. ► Parallel development of tools for patient phenotyping uses standardized EHR data. ► Disparate EHR data were normalized and accessed by a phenotyping rules engine. ► A data throughput test informed design of the framework. Challenges are discussed. The Strategic Health IT Advanced Research Projects (SHARP) Program, established by the Office of the National Coordinator for Health Information Technology in 2010 supports research findings that remove barriers for increased adoption of health IT. The improvements envisioned by the SHARP Area 4 Consortium (SHARPn) will enable the use of the electronic health record (EHR) for secondary purposes, such as care process and outcomes improvement, biomedical research and epidemiologic monitoring of the nation’s health. One of the primary informatics problem areas in this endeavor is the standardization of disparate health data from the nation’s many health care organizations and providers. The SHARPn team is developing open source services and components to support the ubiquitous exchange, sharing and reuse or ‘liquidity’ of operational clinical data stored in electronic health records. One year into the design and development of the SHARPn framework, we demonstrated end to end data flow and a prototype SHARPn platform, using thousands of patient electronic records sourced from two large healthcare organizations: Mayo Clinic and Intermountain Healthcare. The platform was deployed to (1) receive source EHR data in several formats, (2) generate structured data from EHR narrative text, and (3) normalize the EHR data using common detailed clinical models and Consolidated Health Informatics standard terminologies, which were (4) accessed by a phenotyping service using normalized data specifications. The architecture of this prototype SHARPn platform is presented. The EHR data throughput demonstration showed success in normalizing native EHR data, both structured and narrative, from two independent organizations and EHR systems. Based on the demonstration, observed challenges for standardization of EHR data for interoperable secondary use are discussed.
ISSN:1532-0464
1532-0480
DOI:10.1016/j.jbi.2012.01.009