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Evaluation of clustering algorithms for word sense disambiguation

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  • Bartosz Broda
  • Wojciech Mazur

Abstract

Word sense disambiguation in text is still a difficult problem as the best supervised methods require laborious and costly preparation of training data. This work focuses on evaluation of a few selected clustering algorithms in the task of word sense disambiguation. We used five datasets for two languages (English and Polish). Five clustering algorithms (k-means, k-medoids, hierarchical agglomerative clustering, hierarchical divisive clustering, graph-partitioning-based clustering) and two weighting schemes were tested. The best parameters of the algorithms were chosen using 5 × 2 cross validation. BCubed measure was employed for evaluation of clustering. We conclude that with these settings agglomerative hierarchical clustering achieves best results for all the datasets.

Suggested Citation

  • Bartosz Broda & Wojciech Mazur, 2012. "Evaluation of clustering algorithms for word sense disambiguation," International Journal of Data Analysis Techniques and Strategies, Inderscience Enterprises Ltd, vol. 4(3), pages 219-236.
  • Handle: RePEc:ids:injdan:v:4:y:2012:i:3:p:219-236
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    Cited by:

    1. Neji, Hella Ben Brahim & Turki, Sami Yassine, 2015. "GIS – based multicriteria decision analysis for the delimitation of an agricultural perimeter irrigated with treated wastewater," Agricultural Water Management, Elsevier, vol. 162(C), pages 78-86.

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