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Normalized MEDLINE distance in context-aware life science literature searches

机译:情境感知生命科学文献搜索中的归一化MEDLINE距离

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摘要

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.
机译:在网络上进行文献搜索会产生大量查询结果。这里介绍了一个模型,可以根据用户兴趣来优化搜索过程。分析用户兴趣,以计算兴趣项之间的语义相似度,以优化查询。传统的通用相似性度量可能并不总是适合特定领域的情况。本文提出了一种基于生物医学文献知识源“ MEDLINE”(归一化的MEDLINE距离)的医学文献检索相似度方法,以更合理地反映医学术语之间的相关性。该措施通过计算用户兴趣词的相似度来重新排列兴趣词列表,从而给出更准确的用户兴趣描述。准确的用户兴趣描述可用于关键字搜索中的查询优化,从而为用户提供更多个性化的结果。该措施还通过控制每个感兴趣主题的结果返回数量来改善个性化搜索结果。

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