Introducing two Vietnamese Datasets for Evaluating Semantic Models of (Dis-)Similarity and Relatedness

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Authors Kim Anh Nguyen, Sabine Schulte im Walde, Ngoc Thang Vu arXiv ID 1804.05388 Category cs.CL: Computation & Language Citations 11 Venue North American Chapter of the Association for Computational Linguistics Last Checked 4 months ago
Abstract
We present two novel datasets for the low-resource language Vietnamese to assess models of semantic similarity: ViCon comprises pairs of synonyms and antonyms across word classes, thus offering data to distinguish between similarity and dissimilarity. ViSim-400 provides degrees of similarity across five semantic relations, as rated by human judges. The two datasets are verified through standard co-occurrence and neural network models, showing results comparable to the respective English datasets.
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