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Associative and Semantic Features Extracted From Web-Harvested Corpora

Proceedings of the Eighth International Conference on Language Resources and Evaluation (LREC 2012)

DOI:10.63317/57i56bm2gv5i

Abstract

We address the problem of automatic classification of associative and semantic relations between words, and particularly those that hold between nouns. Lexical relations such as synonymy, hypernymy/hyponymy, constitute the fundamental types of semantic relations. Associative relations are harder to define, since they include a long list of diverse relations, e.g., """"Cause-Effect"""", """"Instrument-Agency"""". Motivated by findings from the literature of psycholinguistics and corpus linguistics, we propose features that take advantage of general linguistic properties. For evaluation we merged three datasets assembled and validated by cognitive scientists. A proposed priming coefficient that measures the degree of asymmetry in the order of appearance of the words in text achieves the best classification results, followed by context-based similarity metrics. The web-based features achieve classification accuracy that exceeds 85%.

Details

Paper ID
lrec2012-main-301
Pages
pp. 2991-2998
BibKey
iosif-etal-2012-associative
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
978-2-9517408-7-7
Conference
Eighth International Conference on Language Resources and Evaluation
Location
Istanbul, Turkey
Date
21 May 2012 27 May 2012

Authors

  • EI

    Elias Iosif

  • MG

    Maria Giannoudaki

  • EF

    Eric Fosler-Lussier

  • AP

    Alexandros Potamianos

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