Publication | Closed Access
Word Space
212
Citations
12
References
1992
Year
EngineeringSemanticsSemantic SimilarityCorpus LinguisticsText MiningWord EmbeddingsNatural Language ProcessingSemantic InformationData ScienceComputational LinguisticsLanguage StudiesMachine TranslationKnowledge DiscoveryLexical Coccurrence StatisticsDistributional SemanticsNearest Neighbor MethodLinguisticsWord-sense DisambiguationSemantic Representation
Representations for semantic information about words are necessary for many applications of neural networks in natural language processing. This paper describes an efficient, corpus-based method for inducing distributed semantic representations for a large number of words (50,000) from lexical coccurrence statistics by means of a large-scale linear regression. The representations are successfully applied to word sense disambiguation using a nearest neighbor method.
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