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Updated: Aug 17, 2026

Electronic Tongue Generating Continuous Recognition Patterns for Protein Analysis
Published on: September 16, 2014
Recognition of protein/gene names from text using an ensemble of classifiers
GuoDong Zhou1, Dan Shen, Jie Zhang
1Institute for Infocomm Research, 21 Heng Mui Keng Terrace, 119613, Singapore. zhougd@i2r.a-star.edu.sg
Abstract:
This paper proposes an ensemble of classifiers for biomedical name recognition in which three classifiers, one Support Vector Machine and two discriminative Hidden Markov Models, are combined effectively using a simple majority voting strategy. In addition, we incorporate three post-processing modules, including an abbreviation resolution module, a protein/gene name refinement module and a simple dictionary matching module, into the system to further improve the performance. Evaluation shows that our system achieves the best performance from among 10 systems with a balanced F-measure of 82.58 on the closed evaluation of the BioCreative protein/gene name recognition task (Task 1A).
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