Literature DB >> 24551390

Word Sense Disambiguation of clinical abbreviations with hyperdimensional computing.

Sungrim Moon1, Bjoern-Toby Berster2, Hua Xu1, Trevor Cohen3.   

Abstract

Automated Word Sense Disambiguation in clinical documents is a prerequisite to accurate extraction of medical information. Emerging methods utilizing hyperdimensional computing present new approaches to this problem. In this paper, we evaluate one such approach, the Binary Spatter Code Word Sense Disambiguation algorithm, on 50 ambiguous abbreviation sets derived from clinical notes. This algorithm uses reversible vector transformations to encode ambiguous terms and their context-specific senses into vectors representing surrounding terms. The sense for a new context is then inferred from vectors representing the terms it contains. One-to-one BSC-WSD achieves average accuracy of 94.55% when considering the orientation and distance of neighboring terms relative to the target abbreviation, outperforming Support Vector Machine and Naïve Bayes classifiers. Furthermore, it is practical to deal with all 50 abbreviations in an identical manner using a single one-to-many BSC-WSD model with average accuracy of 93.91%, which is not possible with common machine learning algorithms.

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Mesh:

Year:  2013        PMID: 24551390      PMCID: PMC3900125     

Source DB:  PubMed          Journal:  AMIA Annu Symp Proc        ISSN: 1559-4076


  19 in total

1.  Effective mapping of biomedical text to the UMLS Metathesaurus: the MetaMap program.

Authors:  A R Aronson
Journal:  Proc AMIA Symp       Date:  2001

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Journal:  Proc AMIA Symp       Date:  2001

3.  The sublanguage of cross-coverage.

Authors:  Peter D Stetson; Stephen B Johnson; Matthew Scotch; George Hripcsak
Journal:  Proc AMIA Symp       Date:  2002

4.  Parsing free text nursing notes.

Authors:  William J Long
Journal:  AMIA Annu Symp Proc       Date:  2003

5.  A multi-aspect comparison study of supervised word sense disambiguation.

Authors:  Hongfang Liu; Virginia Teller; Carol Friedman
Journal:  J Am Med Inform Assoc       Date:  2004-04-02       Impact factor: 4.497

6.  Representing word meaning and order information in a composite holographic lexicon.

Authors:  Michael N Jones; Douglas J K Mewhort
Journal:  Psychol Rev       Date:  2007-01       Impact factor: 8.934

7.  A comparative study of supervised learning as applied to acronym expansion in clinical reports.

Authors:  Mahesh Joshi; Serguei Pakhomov; Ted Pedersen; Christopher G Chute
Journal:  AMIA Annu Symp Proc       Date:  2006

8.  Automated disambiguation of acronyms and abbreviations in clinical texts: window and training size considerations.

Authors:  Sungrim Moon; Serguei Pakhomov; Genevieve B Melton
Journal:  AMIA Annu Symp Proc       Date:  2012-11-03

9.  Connectionism and cognitive architecture: a critical analysis.

Authors:  J A Fodor; Z W Pylyshyn
Journal:  Cognition       Date:  1988-03

10.  Machine learning and word sense disambiguation in the biomedical domain: design and evaluation issues.

Authors:  Hua Xu; Marianthi Markatou; Rositsa Dimova; Hongfang Liu; Carol Friedman
Journal:  BMC Bioinformatics       Date:  2006-07-05       Impact factor: 3.169

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  3 in total

1.  Towards Comprehensive Clinical Abbreviation Disambiguation Using Machine-Labeled Training Data.

Authors:  Gregory P Finley; Serguei V S Pakhomov; Reed McEwan; Genevieve B Melton
Journal:  AMIA Annu Symp Proc       Date:  2017-02-10

2.  A long journey to short abbreviations: developing an open-source framework for clinical abbreviation recognition and disambiguation (CARD).

Authors:  Yonghui Wu; Joshua C Denny; S Trent Rosenbloom; Randolph A Miller; Dario A Giuse; Lulu Wang; Carmelo Blanquicett; Ergin Soysal; Jun Xu; Hua Xu
Journal:  J Am Med Inform Assoc       Date:  2017-04-01       Impact factor: 4.497

3.  Symbolic Representation and Learning With Hyperdimensional Computing.

Authors:  Anton Mitrokhin; Peter Sutor; Douglas Summers-Stay; Cornelia Fermüller; Yiannis Aloimonos
Journal:  Front Robot AI       Date:  2020-06-09
  3 in total

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