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Weakly-supervised Neural Semantic Parsing with a Generative Ranker

机译:生成式排序器的弱监督神经语义解析

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摘要

Weakly-supervised semantic parsers are trained on utterance-denotation pairs, treating logical forms as latent. The task is challenging due to the large search space and spuriousness of logical forms. In this paper we introduce a neural parser-ranker system for weakly-supervised semantic parsing. The parser generates candidate tree-structured logical forms from utterances using clues of denotations. These candidates are then ranked based on two criterion: their likelihood of executing to the correct denotation, and their agreement with the utterance semantics. We present a scheduled training procedure to balance the contribution of the two objectives. Furthermore, we propose to use a neurally encoded lexicon to inject prior domain knowledge to the model. Experiments on three Freebase datasets demonstrate the effectiveness of our semantic parser, achieving results within the state-of-the-art range.
机译:弱监督的语义解析器在发话-表示对上进行训练,将逻辑形式视为潜在的。由于庞大的搜索空间和逻辑形式的虚假性,这项任务具有挑战性。在本文中,我们介绍了用于弱监督语义解析的神经解析器-排名系统。解析器使用提示的线索从发声中生成候选树结构逻辑形式。然后,基于两个标准对这些候选者进行排名:它们执行正确的符号的可能性以及他们与话语语义的一致性。我们提出了预定的培训程序,以平衡两个目标的贡献。此外,我们建议使用神经编码的词典将先前的领域知识注入模型。在三个Freebase数据集上进行的实验证明了我们的语义解析器的有效性,并在最先进的范围内取得了成果。

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  • 来源
  • 会议地点 Brussels(BE)
  • 作者

    Jianpeng Cheng; Mirella Lapata;

  • 作者单位

    Institute for Language, Cognition and Computation School of Informatics, University of Edinburgh 10 Crichton Street, Edinburgh EH8 9AB;

    Institute for Language, Cognition and Computation School of Informatics, University of Edinburgh 10 Crichton Street, Edinburgh EH8 9AB;

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