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ABSent: Cross-Lingual Sentence Representation Mapping with Bidirectional GANs

2020-01-29 · Zuohui Fu, Yikun Xian, Shijie Geng, Yingqiang Ge, Yuting Wang, Xin Dong, Guang Wang, Gerard de Melo

A number of cross-lingual transfer learning approaches based on neural networks have been proposed for the case when large amounts of parallel text are at our disposal. However, in many real-world settings, the size of parallel annotated training data is restricted. Additionally, prior cross-lingual mapping research has mainly focused on the word level. This raises the question of whether such techniques can also be applied to effortlessly obtain cross-lingually aligned sentence representations. To this end, we propose an Adversarial Bi-directional Sentence Embedding Mapping (ABSent) framework, which learns mappings of cross-lingual sentence representations from limited quantities of parallel data.

📄 PDF Abstract BibTeX arXiv:2001.11121

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Tasks

Cross-Lingual TransferSentenceSentence EmbeddingSentence-EmbeddingTransfer Learning

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