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    AMIA Annu Symp Proc. 2008 Nov 6:368.

    Toward automatic recognition of high quality clinical evidence.

    Kilicoglu H, Demner-Fushman D, Rindflesch TC, Wilczynski NL, Haynes RB.

    Concordia University, Department of Computer Science and Software Engineering, Montreal, Canada.

    Automatic methods for recognizing topically relevant documents supported by high quality research can assist clinicians in practicing evidence-based medicine. We approach the challenge of identifying articles with high quality clinical evidence as a binary classification problem. Combining predictions from supervised machine learning methods and using deep semantic features, we achieve 73.5% precision and 67% recall.

    PMID: 18998881 [PubMed - in process]

    PMCID: PMC2656036

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