WordNet-Based Information Retrieval Using Common Hypernyms and Combined Features

July 15, 2018 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Vuong M. Ngo, Tru H. Cao, Tuan M. V. Le arXiv ID 1807.05574 Category cs.CL: Computation & Language Cross-listed cs.IR Citations 6 Venue arXiv.org Last Checked 5 months ago
Abstract
Text search based on lexical matching of keywords is not satisfactory due to polysemous and synonymous words. Semantic search that exploits word meanings, in general, improves search performance. In this paper, we survey WordNet-based information retrieval systems, which employ a word sense disambiguation method to process queries and documents. The problem is that in many cases a word has more than one possible direct sense, and picking only one of them may give a wrong sense for the word. Moreover, the previous systems use only word forms to represent word senses and their hypernyms. We propose a novel approach that uses the most specific common hypernym of the remaining undisambiguated multi-senses of a word, as well as combined WordNet features to represent word meanings. Experiments on a benchmark dataset show that, in terms of the MAP measure, our search engine is 17.7% better than the lexical search, and at least 9.4% better than all surveyed search systems using WordNet. Keywords Ontology, word sense disambiguation, semantic annotation, semantic search.
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