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Sequential result refinement for searching the biomedical literature

Journal of Biomedical InformaticsPublished 10 March 2009
Len Tanaka, Jorge R Herskovic, M. Sriram Iyengar, Elmer V. Bernstam
Citations3
SJR quartileQ1
SJR score1.26
SNIP1.62

TL;DR

A method for identifying articles likely to be highly cited by using information available at the time of listing in MEDLINE, which uses a score based on Medical Subject Headings (MeSH) terms, journal impact factor (JIF), and number of authors is presented.

Abstract

Information overload is a problem for users of MEDLINE, the database of biomedical literature that indexes over 17 million articles. Various techniques have been developed to retrieve high quality or important articles. Some techniques rely on using the number of citations as a measurement of an article's importance. Unfortunately, citation information is proprietary, expensive, and suffers from "citation lag." MEDLINE users have a variety of information needs. Although some users require high recall, many users are looking for a "few good articles" on a topic. For these users, precision is more important than recall. We present and evaluate a method for identifying articles likely to be highly cited by using information available at the time of listing in MEDLINE. The method uses a score based on Medical Subject Headings (MeSH) terms, journal impact factor (JIF), and number of authors. This method can filter large MEDLINE result sets (>1000 articles) returned by actual user queries to produce small, highly cited result sets.

Keywords

Computer ScienceBiochemistry, Genetics and Molecular Biology