Literature DB >> 11825207

A knowledge model for the interpretation and visualization of NLP-parsed discharged summaries.

M Krauthammer1, G Hripcsak.   

Abstract

At our institution, a Natural Language Processing (NLP) tool called MedLEE is used on a daily basis to parse medical texts including complete discharge summaries. MedLEE transforms written text into a generic structured format, which preserves the richness of the underlying natural language expressions by the use of concept modifiers (like change, certainty, degree and status). As a tradeoff, extraction of application-specific medical information is difficult without a clear understanding of how these modifiers combine. We report on a knowledge model for MedLEE modifiers that is helpful for a high level interpretation of NLP data and is used for the generation of two distinct views on NLP-parsed discharge summaries: A physician view offering a condensed overview of the severity of patient problems and a data mining view featuring binary problem states useful for machine learning.

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Mesh:

Year:  2001        PMID: 11825207      PMCID: PMC2243525     

Source DB:  PubMed          Journal:  Proc AMIA Symp        ISSN: 1531-605X


  12 in total

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Review 8.  Natural language processing in medicine: an overview.

Authors:  P Spyns
Journal:  Methods Inf Med       Date:  1996-12       Impact factor: 2.176

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  3 in total

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3.  Twilighted Homegrown Systems: The Experience of Six Traditional Electronic Health Record Developers in the Post-Meaningful Use Era.

Authors:  Tiago K Colicchio; James J Cimino
Journal:  Appl Clin Inform       Date:  2020-05-20       Impact factor: 2.342

  3 in total

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