BabelDomains: Large-scale domain labeling of lexical resources

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Abstract

In this paper we present BabelDomains, a unified resource which provides lexical items with information about domains of knowledge. We propose an automatic method that uses knowledge from various lexical resources, exploiting both distributional and graph-based clues, to accurately propagate domain information. We evaluate our methodology intrinsically on two lexical resources (WordNet and BabelNet), achieving a precision over 80% in both cases. Finally, we show the potential of BabelDomains in a supervised learning setting, clustering training data by domain for hypernym discovery.

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Camacho-Collados, J., & Navigli, R. (2017). BabelDomains: Large-scale domain labeling of lexical resources. In 15th Conference of the European Chapter of the Association for Computational Linguistics, EACL 2017 - Proceedings of Conference (Vol. 2, pp. 223–228). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/e17-2036

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