JOURNAL ARTICLE

Latent Semantic Word Sense Disambiguation Using Global Co-Occurrence Information

Abstract

In this paper, I propose a novel word sense disambiguation method based on the global cooccurrence information using NMF.When I calculate the dependency relation matrix, the existing method tends to produce very sparse co-occurrence matrix from a small training set.Therefore, the NMF algorithm sometimes does not converge to desired solutions.To obtain a large number of co-occurrence relations, I propose to use co-occurrence frequencies of dependency relations between word features in the whole training set.This enables us to solve data sparseness problem and induce more effective latent features.To evaluate the efficiency of the method of word sense disambiguation, I make some experiments to compare with the result of the two baseline methods.The results of the experiments show this method is effective for word sense disambiguation in comparison with the all baseline methods.Moreover, the proposed method is effective for obtaining a stable effect by analyzing the global co-occurrence information.

Keywords:
Computer science Latent semantic analysis Word-sense disambiguation Word (group theory) Non-negative matrix factorization Dependency (UML) Artificial intelligence Set (abstract data type) SemEval Natural language processing Baseline (sea) Co-occurrence Relation (database) Pattern recognition (psychology) Matrix decomposition Data mining Mathematics Task (project management)

Metrics

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Cited By
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FWCI (Field Weighted Citation Impact)
9
Refs
0.28
Citation Normalized Percentile
Is in top 1%
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Topics

Natural Language Processing Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Topic Modeling
Physical Sciences →  Computer Science →  Artificial Intelligence
Text and Document Classification Technologies
Physical Sciences →  Computer Science →  Artificial Intelligence

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