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Health level seven interoperability strategy: big data, incrementally structured.

R H Dolin1, B Rogers, C Jaffe

  • 1Robert H Dolin, MD, 1368 N Stallion St Orange, CA 92869, USA,

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|December 3, 2014
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Summary
This summary is machine-generated.

The Health Level Seven Clinical Document Architecture (CDA) enables faster data flow for big data analysis by incrementally structuring narrative data. This approach enhances clinical quality reporting and referral management insights.

Keywords:
Big dataCDAHL7Semantic Interoperability

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Area of Science:

  • Health informatics
  • Big data analytics
  • Clinical data interoperability

Background:

  • The Health Level Seven Clinical Document Architecture (CDA) is a foundational standard for US Meaningful Use.
  • Current interoperability strategies often face challenges with large, unstructured datasets.
  • The need for efficient big data analysis in healthcare is growing.

Purpose of the Study:

  • To describe how the HL7 CDA contributes to an "big data, incrementally structured" interoperability strategy.
  • To present case studies demonstrating the leverage of CDA for big data analysis.
  • To assert that semi-structured narrative in CDA format can aid big data analytics.

Main Methods:

  • Two case studies were presented to support the assertion of CDA's utility.
  • Case 1: Assessed clinical quality report generation using coded data alone versus coded data supplemented by CDA narrative.
  • Case 2: Leveraged CDA to construct a network model for referral management analysis.

Main Results:

  • Supplementing coded data with CDA narrative significantly impacted calculated clinical quality performance scores.
  • The CDA-derived network model identified distinct patient characteristics across different referral workflows.
  • CDA facilitates the flow of narrative data, which is then incrementally structured.

Conclusions:

  • The CDA approach indirectly acquires data by prioritizing narrative flow, followed by incremental structuring.
  • The growing adoption of CDA is attracting the attention of the big data community for its potential to supply large data volumes.
  • Future exercises will quantitatively assess CDA's effectiveness in increasing data flow compared to other methods.