Grammar learning for spoken language understanding

Ye-Yi Wang, A. Acero
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引用次数: 30

Abstract

Many state-of-the-art conversational systems use semantic-based robust understanding and manually derived grammars, a very time-consuming and error-prone process. This paper describes a machine-aided grammar authoring system that enables a programmer to develop rapidly a high quality grammar for conversational systems. This is achieved with a combination of domain-specific semantics, a library grammar, syntactic constraints and a small number of example sentences that have been semantically annotated. Our experiments show that the learned semantic grammars consistently outperform manually authored grammars, requiring much less authoring load.
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口语理解的语法学习
许多最先进的会话系统使用基于语义的健壮理解和手动派生的语法,这是一个非常耗时且容易出错的过程。本文描述了一个机器辅助语法编写系统,使程序员能够快速地为会话系统开发高质量的语法。这是通过结合特定于领域的语义、库语法、语法约束和少量经过语义注释的例句来实现的。我们的实验表明,学习的语义语法始终优于手动编写的语法,需要更少的编写负载。
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