Neural Semantic Parsing in Low-Resource Settings with Back-Translation and Meta-Learning
Yibo Sun, Duyu Tang, Nan Duan, Yeyun Gong, Xiaocheng Feng, Bing Qin, Daxin Jiang
摘要
Neural semantic parsing has achieved impressive results in recent years, yet its success relies on the availability of large amounts of supervised data. Our goal is to learn a neural semantic parser when only prior knowledge about a limited number of simple rules is available, without access to either annotated programs or execution results. Our approach is initialized by rules, and improved in a back-translation paradigm using generated question-program pairs from the semantic parser and the question generator. A phrase table with frequent mapping patterns is automatically derived, also updated as training progresses, to measure the quality of generated instances. We train the model with model-agnostic meta-learning to guarantee the accuracy and stability on examples covered by rules, and meanwhile acquire the versatility to generalize well on examples uncovered by rules. Results on three benchmark datasets with different domains and programs show that our approach incrementally improves the accuracy. On WikiSQL, our best model is comparable to the state-of-the-art system learned from denotations.
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- Low-Resource Domain Adaptation for Compositional Task-Oriented Semantic ParsingXilun Chen, Asish Ghoshal, Yashar Mehdad, Luke Zettlemoyer 等EMNLP 2020 · 被引用 66 次
- Learning a Cost-Effective Annotation Policy for Question AnsweringBernhard Kratzwald, Stefan Feuerriegel, Huan SunEMNLP 2020 · 被引用 9 次
- Ambiguous Learning from Retrieval: Towards Zero-shot Semantic ParsingShan Wu, Chunlei Xin, Hongyu Lin, Xianpei Han 等ACL 2023
- From Paraphrasing to Semantic Parsing: Unsupervised Semantic Parsing via Synchronous Semantic DecodingShan Wu, Bo Chen, Chunlei Xin, Xianpei Han 等ACL 2021
- KaggleDBQA: Realistic Evaluation of Text-to-SQL ParsersChia-Hsuan Lee, Oleksandr Polozov, Matthew RichardsonACL 2021
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