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An Information Extraction Framework for Cohort Identification Using Electronic Health Records

Information extraction (IE), a natural language processing (NLP) task that automatically extracts structured or semi-structured information from free text, has become popular in the clinical domain for supporting automated systems at point-of-care and enabling secondary use of electronic health reco...

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Autores principales: Liu, Hongfang, Bielinski, Suzette J., Sohn, Sunghwan, Murphy, Sean, Wagholikar, Kavishwar B., Jonnalagadda, Siddhartha R., Ravikumar, K.E., Wu, Stephen T., Kullo, Iftikhar J., Chute, Christopher G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Medical Informatics Association 201
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3845757/
https://www.ncbi.nlm.nih.gov/pubmed/24303255
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author Liu, Hongfang
Bielinski, Suzette J.
Sohn, Sunghwan
Murphy, Sean
Wagholikar, Kavishwar B.
Jonnalagadda, Siddhartha R.
Ravikumar, K.E.
Wu, Stephen T.
Kullo, Iftikhar J.
Chute, Christopher G
author_facet Liu, Hongfang
Bielinski, Suzette J.
Sohn, Sunghwan
Murphy, Sean
Wagholikar, Kavishwar B.
Jonnalagadda, Siddhartha R.
Ravikumar, K.E.
Wu, Stephen T.
Kullo, Iftikhar J.
Chute, Christopher G
author_sort Liu, Hongfang
collection PubMed
description Information extraction (IE), a natural language processing (NLP) task that automatically extracts structured or semi-structured information from free text, has become popular in the clinical domain for supporting automated systems at point-of-care and enabling secondary use of electronic health records (EHRs) for clinical and translational research. However, a high performance IE system can be very challenging to construct due to the complexity and dynamic nature of human language. In this paper, we report an IE framework for cohort identification using EHRs that is a knowledge-driven framework developed under the Unstructured Information Management Architecture (UIMA). A system to extract specific information can be developed by subject matter experts through expert knowledge engineering of the externalized knowledge resources used in the framework.
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spelling pubmed-38457572013-12-03 An Information Extraction Framework for Cohort Identification Using Electronic Health Records Liu, Hongfang Bielinski, Suzette J. Sohn, Sunghwan Murphy, Sean Wagholikar, Kavishwar B. Jonnalagadda, Siddhartha R. Ravikumar, K.E. Wu, Stephen T. Kullo, Iftikhar J. Chute, Christopher G AMIA Jt Summits Transl Sci Proc Articles Information extraction (IE), a natural language processing (NLP) task that automatically extracts structured or semi-structured information from free text, has become popular in the clinical domain for supporting automated systems at point-of-care and enabling secondary use of electronic health records (EHRs) for clinical and translational research. However, a high performance IE system can be very challenging to construct due to the complexity and dynamic nature of human language. In this paper, we report an IE framework for cohort identification using EHRs that is a knowledge-driven framework developed under the Unstructured Information Management Architecture (UIMA). A system to extract specific information can be developed by subject matter experts through expert knowledge engineering of the externalized knowledge resources used in the framework. American Medical Informatics Association 2013 -03- 18 /pmc/articles/PMC3845757/ /pubmed/24303255 Text en ©2013 AMIA - All rights reserved.
spellingShingle Articles
Liu, Hongfang
Bielinski, Suzette J.
Sohn, Sunghwan
Murphy, Sean
Wagholikar, Kavishwar B.
Jonnalagadda, Siddhartha R.
Ravikumar, K.E.
Wu, Stephen T.
Kullo, Iftikhar J.
Chute, Christopher G
An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title_full An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title_fullStr An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title_full_unstemmed An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title_short An Information Extraction Framework for Cohort Identification Using Electronic Health Records
title_sort information extraction framework for cohort identification using electronic health records
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3845757/
https://www.ncbi.nlm.nih.gov/pubmed/24303255
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