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Leveraging advanced analytics techniques for medical systematic review update

  • Prem Timsina
  • , Omar F. El-Gayar
  • , Jun Liu

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

2 Scopus citations

Abstract

While systematic reviews (SRs) are positioned as an essential element of modern evidence-based medical practice, the creation and update of these reviews is resource intensive. In this research, we propose to leverage advanced analytics techniques for automatically classifying articles for inclusion and exclusion for systematic review update. Specifically, we used the soft-margin Support Vector Machine (SVM) as a classifier and examined various techniques to resolve class imbalance issues. Through an empirical study, we demonstrated that the soft-margin SVM works better than the perceptron algorithm used in current research and the performance of the classifier can be further improved by exploiting different sampling methods to resolve class imbalance issues.

Original languageEnglish
Title of host publicationProceedings of the 48th Annual Hawaii International Conference on System Sciences, HICSS 2015
EditorsTung X. Bui, Ralph H. Sprague
PublisherIEEE Computer Society
Pages976-985
Number of pages10
ISBN (Electronic)9781479973675
DOIs
StatePublished - 26 Mar 2015
Externally publishedYes
Event48th Annual Hawaii International Conference on System Sciences, HICSS 2015 - Kauai, United States
Duration: 5 Jan 20158 Jan 2015

Publication series

NameProceedings of the Annual Hawaii International Conference on System Sciences
Volume2015-March
ISSN (Print)1530-1605

Conference

Conference48th Annual Hawaii International Conference on System Sciences, HICSS 2015
Country/TerritoryUnited States
CityKauai
Period5/01/158/01/15

Keywords

  • Class imbalance problem
  • Data mining
  • SMOTE
  • Support vector machine
  • Systematic review
  • Text mining

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