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      Evaluation of optimization techniques for variable selection in logistic regression applied to diagnosis of myocardial infarction

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          Abstract

          Logistic regression is often used to help make medical decisions with binary outcomes. Here we evaluate the use of several methods for selection of variables in logistic regression. We use a large dataset to predict the diagnosis of myocardial infarction in patients reporting to an emergency room with chest pain. Our results indicate that some of the examined methods are well suited for variable selection in logistic regression and that our model, and our myocardial infarction risk calculator, can be an additional tool to aid physicians in myocardial infarction diagnosis.

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          Most cited references12

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          Subset Selection in Regression

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            Subset Selection in Regression

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              Log-Linear Models and Logistic Regression

              (1997)
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                Author and article information

                Journal
                Bioinformation
                Bioinformation
                Bioinformation
                Biomedical Informatics Publishing Group
                0973-2063
                2009
                28 February 2009
                : 3
                : 7
                : 311-313
                Affiliations
                [1 ]Computer Science and Artificial Intelligence Laboratory, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge,MA, 02139, USA
                [2 ]Department of Cell and Developmental Biology, Sackler Faculty of Medicine, Tel Aviv University, 69978, Israel
                Author notes
                [* ]Noam Shomron: nshomron@ 123456post.tau.ac.il ; Tel: +972-3-640-6594; Fax: +972-3-640-7432
                Article
                006900032009
                2655051
                19293999
                a19eeeb5-e604-48b0-9123-48cfab8efa7f
                © 2009 Biomedical Informatics Publishing Group

                This is an open-access article, which permits unrestricted use, distribution, and reproduction in any medium, for non-commercial purposes, provided the original author and source are credited.

                History
                : 4 January 2009
                : 27 January 2009
                Categories
                Hypothesis

                Bioinformatics & Computational biology
                diagnostic markers,variable selection methods,logistic regression,myocardial infarction

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