Unsupervised Text Generation by Learning from Search
Jingjing Li, Zichao Li, Lili Mou, Xin Jiang, Michael R. Lyu, Irwin King
摘要
In this work, we present TGLS, a novel framework to unsupervised Text Generation by Learning from Search. We start by applying a strong search algorithm (in particular, simulated annealing) towards a heuristically defined objective that (roughly) estimates the quality of sentences. Then, a conditional generative model learns from the search results, and meanwhile smooth out the noise of search. The alternation between search and learning can be repeated for performance bootstrapping. We demonstrate the effectiveness of TGLS on two real-world natural language generation tasks, paraphrase generation and text formalization. Our model significantly outperforms unsupervised baseline methods in both tasks. Especially, it achieves comparable performance with the state-of-the-art supervised methods in paraphrase generation. * equal contribution Preprint. Under review.
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引用它的顶会 Paper19
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它引用的顶会 Paper5
- Unsupervised Paraphrasing by Simulated AnnealingXianggen Liu, Lili Mou, Fandong Meng, Hao Zhou 等ACL 2020 · 被引用 74 次
- On Variational Learning of Controllable Representations for Text without SupervisionPeng Xu, Jackie Chi Kit Cheung, Yanshuai CaoICML 2020 · 被引用 69 次
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- Discrete Optimization for Unsupervised Sentence Summarization with Word-Level ExtractionRaphael Schumann, Lili Mou, Yao Lu, Olga Vechtomova 等ACL 2020 · 被引用 4 次
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