Papers › Unsupervised Multilingual Word Embeddings

Unsupervised Multilingual Word Embeddings

27 Aug 2018EMNLP 2018 10arXiv:1808.08933archive 2025-07-28

Xilun Chen, Claire Cardie

Multilingual Word Embeddings (MWEs) represent words from multiple languages in a single distributional vector space. Unsupervised MWE (UMWE) methods acquire multilingual embeddings without cross-lingual supervision, which is a significant advantage over traditional supervised approaches and opens many new possibilities for low-resource languages. Prior art for learning UMWEs, however, merely relies on a number of independently trained Unsupervised Bilingual Word Embeddings (UBWEs) to obtain multilingual embeddings. These methods fail to leverage the interdependencies that exist among many languages. To address this shortcoming, we propose a fully unsupervised framework for learning MWEs that directly exploits the relations between all language pairs. Our model substantially outperforms previous approaches in the experiments on multilingual word translation and cross-lingual word similarity. In addition, our model even beats supervised approaches trained with cross-lingual resources.

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ccsasuke/umwe officialmentioned in papermentioned on GitHubpytorchNOASSERTION report
selimseker/logogram-language-generator mentioned on GitHubpytorch report
soumyaumass/umwe mentioned on GitHubpytorch report

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Multilingual Word EmbeddingsTranslationWord EmbeddingsWord SimilarityWord Translation

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