2020
DOI: 10.3906/elk-1906-46
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Chemical disease relation extraction task using genetic algorithm with two novelvoting methods for classifier subset selection

Abstract: Biomedical relation extraction is an important preliminary step for knowledge discovery in the biomedical domain. This paper proposes a multiple classifier system (MCS) for the extraction of chemical-induced disease relations. A genetic algorithm (GA) is employed to select classifier ensembles from a pool of base classifiers. Moreover, the voting method used for combining the members of each of the ensembles is also selected during evolution in the GA framework. The performances of the MCSs are determined by t… Show more

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