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Merging Data Diversity of Clinical Medical Records to Improve Effectiveness

Author

Listed:
  • Berit I. Helgheim

    (Logistics, Molde University College, Molde, NO-6410 Molde, Norway)

  • Rui Maia

    (DEI, Instituto Superior Técnico, 1049-001 Lisboa, Portugal)

  • Joao C. Ferreira

    (Instituto Universitário de Lisboa (ISCTE-IUL), ISTAR-IUL, 1649-026 Lisbon, Portugal)

  • Ana Lucia Martins

    (Instituto Universitário de Lisboa (ISCTE-IUL), BRU-IUL, 1649-026 Lisbon, Portugal)

Abstract

Medicine is a knowledge area continuously experiencing changes. Every day, discoveries and procedures are tested with the goal of providing improved service and quality of life to patients. With the evolution of computer science, multiple areas experienced an increase in productivity with the implementation of new technical solutions. Medicine is no exception. Providing healthcare services in the future will involve the storage and manipulation of large volumes of data (big data) from medical records, requiring the integration of different data sources, for a multitude of purposes, such as prediction, prevention, personalization, participation, and becoming digital. Data integration and data sharing will be essential to achieve these goals. Our work focuses on the development of a framework process for the integration of data from different sources to increase its usability potential. We integrated data from an internal hospital database, external data, and also structured data resulting from natural language processing (NPL) applied to electronic medical records. An extract-transform and load (ETL) process was used to merge different data sources into a single one, allowing more effective use of these data and, eventually, contributing to more efficient use of the available resources.

Suggested Citation

  • Berit I. Helgheim & Rui Maia & Joao C. Ferreira & Ana Lucia Martins, 2019. "Merging Data Diversity of Clinical Medical Records to Improve Effectiveness," IJERPH, MDPI, vol. 16(5), pages 1-20, March.
  • Handle: RePEc:gam:jijerp:v:16:y:2019:i:5:p:769-:d:210600
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    References listed on IDEAS

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    1. Luther, S.L. & McCart, J.A. & Berndt, D.J. & Hahm, B. & Finch, D. & Jarman, J. & Foulis, P.R. & Lapcevic, W.A. & Campbell, R.R. & Shorr, R.I. & Valencia, K.M. & Powell-Cope, G., 2015. "Improving identification of fall-related injuries in ambulatory care using statistical text mining," American Journal of Public Health, American Public Health Association, vol. 105(6), pages 1168-1173.
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