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Normalized MEDLINE Distance in Context-Aware Life Science Literature Searches

Yan WANG1Cong WANG1Yi ZENG1Zhisheng HUANG2Vassil Momtchev3Bo Andersson4Xu REN1Ning ZHONG1,5( )
International WIC Institute, Beijing University of Technology, Beijing 100124, China
Knowledge Representation and Reasoning Group, Vrije University Amsterdam, Amsterdam 1081 HV, the Netherlands
Ontotext AD, Sirma Group, Sofia 1784, Bulgaria
AstraZeneca R&D, Lund 223 63, Sweden
Department of Life Science and Informatics, Maebashi Institute of Technology, Maebashi-City 371-0816, Japan
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Abstract

Literature searches on the Web result in great volumes of query results. A model is presented here to refine the search process using user interests. User interests are analyzed to calculate semantic similarity among the interest terms to refine the query. Traditional general purpose similarity measures may not always fit a domain specific context. This paper presents a similarity method for medical literature searches based on the biomedical literature knowledge source "MEDLINE", the normalized MEDLINE distance, to more reasonably reflect the relevance between medical terms. This measure gives more accurate user interest descriptions through calculating the similarities of user interest terms to rerank the interest term list. The accurate user interest descriptions can be used for query refinement in keyword searches to give more personalized results for the user. This measure also improves the search results for personalization through controlling the return number of results on each topic of interest.

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Tsinghua Science and Technology
Pages 709-715

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Cite this article:
WANG Y, WANG C, ZENG Y, et al. Normalized MEDLINE Distance in Context-Aware Life Science Literature Searches. Tsinghua Science and Technology, 2010, 15(6): 709-715. https://doi.org/10.1016/S1007-0214(10)70119-X

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Received: 16 September 2010
Revised: 27 September 2010
Published: 01 December 2010
© Tsinghua University Press 2010