AI Article Synopsis

  • The COVID-19 pandemic has led to a lot of research, resulting in fragmented information that needs standardization for effective comparison.
  • A new dataset called the "German Corona Consensus Dataset" (GECCO) has been developed to create uniformity across COVID-19 data using international standards for better data interoperability.
  • GECCO consists of 81 core data elements related to COVID-19 patients, including demographics and medical history, mapped to recognized health terminologies and designed for machine-readable data exchange, with plans for future enhancements.

Article Abstract

Background: The current COVID-19 pandemic has led to a surge of research activity. While this research provides important insights, the multitude of studies results in an increasing fragmentation of information. To ensure comparability across projects and institutions, standard datasets are needed. Here, we introduce the "German Corona Consensus Dataset" (GECCO), a uniform dataset that uses international terminologies and health IT standards to improve interoperability of COVID-19 data, in particular for university medicine.

Methods: Based on previous work (e.g., the ISARIC-WHO COVID-19 case report form) and in coordination with experts from university hospitals, professional associations and research initiatives, data elements relevant for COVID-19 research were collected, prioritized and consolidated into a compact core dataset. The dataset was mapped to international terminologies, and the Fast Healthcare Interoperability Resources (FHIR) standard was used to define interoperable, machine-readable data formats.

Results: A core dataset consisting of 81 data elements with 281 response options was defined, including information about, for example, demography, medical history, symptoms, therapy, medications or laboratory values of COVID-19 patients. Data elements and response options were mapped to SNOMED CT, LOINC, UCUM, ICD-10-GM and ATC, and FHIR profiles for interoperable data exchange were defined.

Conclusion: GECCO provides a compact, interoperable dataset that can help to make COVID-19 research data more comparable across studies and institutions. The dataset will be further refined in the future by adding domain-specific extension modules for more specialized use cases.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7751265PMC
http://dx.doi.org/10.1186/s12911-020-01374-wDOI Listing

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