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ECML
2007
Springer

Discovering Word Meanings Based on Frequent Termsets

13 years 10 months ago
Discovering Word Meanings Based on Frequent Termsets
Word meaning ambiguity has always been an important problem in information retrieval and extraction, as well as, text mining (documents clustering and classification). Knowledge discovery tasks such as automatic ontology building and maintenance would also profit from simple and efficient methods for discovering word meanings. The paper presents a novel text mining approach to discovering word meanings. The offered measures of their context are expressed by means of frequent termsets. The presented methods have been implemented with efficient data mining techniques. The approach is domain- and language-independent, although it requires applying part of speech tagger. The paper includes sample results obtained with the presented methods.
Henryk Rybinski, Marzena Kryszkiewicz, Grzegorz Pr
Added 07 Jun 2010
Updated 07 Jun 2010
Type Conference
Year 2007
Where ECML
Authors Henryk Rybinski, Marzena Kryszkiewicz, Grzegorz Protaziuk, Aleksandra Kontkiewicz, Katarzyna Marcinkowska, Alexandre Delteil
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