DocumentCode :
2830948
Title :
Proximity Window Context Method for Term Extraction in Ontology Learning from Text
Author :
Abramowicz, Witold ; Wisniewski, Marek
Author_Institution :
Poznan Univ. of Econ., Poznan
fYear :
2008
fDate :
1-5 Sept. 2008
Firstpage :
215
Lastpage :
219
Abstract :
The ontology learning from text cycle consists of the consecutive phases of term, synonym, concept, taxonomy and relation extraction. The paper touches the problems of a low efficiency in the current term extraction methods which are handled by a combination of statistic (frequency-based) and linguistic approaches. We present a novel method to extract terms that uses only shallow linguistic information. It is proposed to explore a different set of linguistic layers and support a classic POS n-gram model with additional context information based on proximity window features. The method is evaluated on two substantially different corpora to produce better results than the classic measures, including standard n-gram models and frequency-based approaches.
Keywords :
computational linguistics; learning (artificial intelligence); ontologies (artificial intelligence); text analysis; classic POS n-gram model; linguistic approach; ontology learning; proximity window context method; statistic approach; term extraction; text cycle; Context modeling; Data mining; Databases; Expert systems; Frequency measurement; Information analysis; Ontologies; Phase measurement; Statistics; Taxonomy; Ontology learning; POS n-gram model; term extraction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Database and Expert Systems Application, 2008. DEXA '08. 19th International Workshop on
Conference_Location :
Turin
ISSN :
1529-4188
Print_ISBN :
978-0-7695-3299-8
Type :
conf
DOI :
10.1109/DEXA.2008.133
Filename :
4624718
Link To Document :
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