Data Augmentation with Adversarial Training for Cross-Lingual NLI
Xin Dong, Yaxin Zhu, Zuohui Fu, Dongkuan Xu, Gerard de Melo
摘要
Due to recent pretrained multilingual representation models, it has become feasible to exploit labeled data from one language to train a crosslingual model that can then be applied to multiple new languages. In practice, however, we still face the problem of scarce labeled data, leading to subpar results. In this paper, we propose a novel data augmentation strategy for better cross-lingual natural language inference by enriching the data to reflect more diversity in a semantically faithful way. To this end, we propose two methods of training a generative model to induce synthesized examples, and then leverage the resulting data using an adversarial training regimen for more robustness. In a series of detailed experiments, we show that this fruitful combination leads to substantial gains in cross-lingual inference.
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引用它的顶会 Paper2
- Enhancing Cross-lingual Natural Language Inference by Prompt-learning from Cross-lingual TemplatesKunxun Qi, Hai Wan, Jianfeng Du, Haolan ChenACL 2022 · 被引用 41 次
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它引用的顶会 Paper4
- Unsupervised Data Augmentation for Consistency TrainingQizhe Xie, Zihang Dai, Eduard H. Hovy, Thang Luong 等NeurIPS 2020 · 被引用 2,774 次
- Unsupervised Cross-lingual Representation Learning at ScaleAlexis Conneau, Kartikay Khandelwal, Naman Goyal, Vishrav Chaudhary 等ACL 2020 · 被引用 539 次
- From Zero to Hero: On the Limitations of Zero-Shot Language Transfer with Multilingual TransformersAnne Lauscher, Vinit Ravishankar, Ivan Vulic, Goran GlavasEMNLP 2020 · 被引用 235 次
- ABSent: Cross-Lingual Sentence Representation Mapping with Bidirectional GANsZuohui Fu, Yikun Xian, Shijie Geng, Yingqiang Ge 等AAAI 2020 · 被引用 20 次
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