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Content Provider | IEEE Xplore Digital Library |
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Author | Jing Wang Gongqing Wu Xuegang Hu |
Copyright Year | 2013 |
Description | Author affiliation: School of Computer Science and Information Engineering, Hefei University of Technology, China, 230009 (Jing Wang; Gongqing Wu; Xuegang Hu) |
Abstract | Dimension reduction is an important component in automatic text categorization, especially biomedical literature classification. Many studies have showed that statistic-based dimension reduction algorithms, like Information Gain (IG), are very effective in document categorization. However these algorithms still suffer from major drawbacks. One facet is that they tend to use all the words as features. Another facet is that they can't capture the semantic information that underlies the lexical words. To overcome these drawbacks, in this paper, a novel algorithm is presented to reduce the dimensionality of biomedical literature. First, a good biomedical concept set can be obtained by the ontology-based entity extraction technique to be the feature space. The semantic relatedness information is incorporated by mapping some original features to “Least-Max-Cover” features, according to the structure of the domain ontology. We demonstrate our method on the problem of classifying MEDLINE-indexed journal abstracts using C4.5 as the basic classifier. The experimental results show that our method has achieved a significant improvement in F-value (3.5%) and recall (5.25%) on average, compared with other state-of-the-art dimensionality reduction algorithms such as IG, CHI, One-R and LARS. |
Starting Page | 1 |
Ending Page | 5 |
File Size | 96691 |
Page Count | 5 |
File Format | |
ISBN | 9781479916603 |
DOI | 10.1109/ANTHOLOGY.2013.6784753 |
Language | English |
Publisher | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
Publisher Date | 2013-01-01 |
Publisher Place | China |
Access Restriction | Subscribed |
Rights Holder | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
Subject Keyword | “Least-Max-Cover” strategy Dimension reduction Ontology Semantics Text categorization Ontologies Feature extraction Prediction algorithms Educational institutions Classification algorithms Automatic text categorization |
Content Type | Text |
Resource Type | Article |
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