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Learning to Map Frequent Phrases to Sub-Structures of Meaning Representation for Neural Semantic Parsing
Author(s) -
Bo Chen,
Xianpei Han,
Ben He,
Le Sun
Publication year - 2020
Publication title -
proceedings of the aaai conference on artificial intelligence
Language(s) - English
Resource type - Journals
eISSN - 2374-3468
pISSN - 2159-5399
DOI - 10.1609/aaai.v34i05.6253
Subject(s) - computer science , natural language processing , parsing , artificial intelligence , vocabulary , granularity , representation (politics) , meaning (existential) , natural language , logical form , encoder , word (group theory) , semantic role labeling , phrase , linguistics , sentence , programming language , law , politics , operating system , psychotherapist , philosophy , political science , psychology
Neural semantic parsers usually generate meaning representation tokens from natural language tokens via an encoder-decoder model. However, there is often a vocabulary-mismatch problem between natural language utterances and logical forms. That is, one word maps to several atomic logical tokens, which need to be handled as a whole, rather than individual logical tokens at multiple steps. In this paper, we propose that the vocabulary-mismatch problem can be effectively resolved by leveraging appropriate logical tokens. Specifically, we exploit macro actions, which are of the same granularity of words/phrases, and allow the model to learn mappings from frequent phrases to corresponding sub-structures of meaning representation. Furthermore, macro actions are compact, and therefore utilizing them can significantly reduce the search space, which brings a great benefit to weakly supervised semantic parsing. Experiments show that our method leads to substantial performance improvement on three benchmarks, in both supervised and weakly supervised settings.

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