Asuka Sumida
2009
Hypernym Discovery Based on Distributional Similarity and Hierarchical Structures
Ichiro Yamada
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Kentaro Torisawa
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Jun’ichi Kazama
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Kow Kuroda
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Masaki Murata
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Stijn De Saeger
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Francis Bond
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Asuka Sumida
Proceedings of the 2009 Conference on Empirical Methods in Natural Language Processing
2008
Boosting Precision and Recall of Hyponymy Relation Acquisition from Hierarchical Layouts in Wikipedia
Asuka Sumida
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Naoki Yoshinaga
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Kentaro Torisawa
Proceedings of the Sixth International Conference on Language Resources and Evaluation (LREC'08)
This paper proposes an extension of Sumida and Torisawas method of acquiring hyponymy relations from hierachical layouts in Wikipedia (Sumida and Torisawa, 2008). We extract hyponymy relation candidates (HRCs) from the hierachical layouts in Wikipedia by regarding all subordinate items of an item x in the hierachical layouts as xs hyponym candidates, while Sumida and Torisawa (2008) extracted only direct subordinate items of an item x as xs hyponym candidates. We then select plausible hyponymy relations from the acquired HRCs by running a filter based on machine learning with novel features, which even improve the precision of the resulting hyponymy relations. Experimental results show that we acquired more than 1.34 million hyponymy relations with a precision of 90.1%.
Hacking Wikipedia for Hyponymy Relation Acquisition
Asuka Sumida
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Kentaro Torisawa
Proceedings of the Third International Joint Conference on Natural Language Processing: Volume-II
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Co-authors
- Kentaro Torisawa 3
- Naoki Yoshinaga 1
- Ichiro Yamada 1
- Jun′ichi Kazama 1
- Kow Kuroda 1
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