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On the Construction of Medical Test Systems Using Greedy Algorithm and Support Vector Machine

The paper presents a formalized statement of the problem of selecting parameters and construction of a genomic classifier for medical test systems with mathematical methods of machine learning without the use of biological and medical knowledge. A method is proposed to solve this problem. The result...

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Bibliographic Details
Published in:Bulletin of experimental biology and medicine 2014-03, Vol.156 (5), p.706-709
Main Authors: Galatenko, V. V., Lebedev, A. E., Nechaev, I. N., Shkurnikov, M. Yu, Tonevitskii, E. A., Podol’skii, V. E.
Format: Article
Language:English
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Summary:The paper presents a formalized statement of the problem of selecting parameters and construction of a genomic classifier for medical test systems with mathematical methods of machine learning without the use of biological and medical knowledge. A method is proposed to solve this problem. The results of testing the method using microarray datasets containing information on genome-wide transcriptome of the samples of estrogen positive breast tumors are discussed. Testing showed that the quality of classification provided by the constructed test system and implemented on the basis of assessments of expression of 12 genes is not inferior to the quality of classification carried out by such test systems as OncotypeDX and MammaPrint.
ISSN:0007-4888
1573-8221
DOI:10.1007/s10517-014-2430-3