会话语音的自动基于框架的注释

Bonaventura Coppola, Alessandro Moschitti, Sara Tonelli, G. Riccardi
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引用次数: 11

摘要

当前的口语理解技术是基于对词序列的简单概念标注,忽略了概念之间的相互依赖关系及其组成语义。这阻碍了对语言现象的有效处理,从而限制了更复杂对话系统的设计。在本文中,我们认为在伯克利框架项目中制定的浅语义表示可能有助于提高管理更复杂对话的能力。为了证明这一点,第一步是证明可以为会话语音设计一个足够精确的FrameNet解析器。我们展示了利用一小组基于框架的手动注释,可以设计一个有效的语义解析器。我们在LUNA项目中创建的意大利语口语对话语料库上的实验表明,我们的方法能够以高精度自动注释未见过的对话回合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic framenet-based annotation of conversational speech
Current Spoken Language Understanding technology is based on a simple concept annotation of word sequences, where the interdependencies between concepts and their compositional semantics are neglected. This prevents an effective handling of language phenomena, with a consequential limitation on the design of more complex dialog systems. In this paper, we argue that shallow semantic representation as formulated in the Berkeley FrameNet Project may be useful to improve the capability of managing more complex dialogs. To prove this, the first step is to show that a FrameNet parser of sufficient accuracy can be designed for conversational speech. We show that exploiting a small set of FrameNet-based manual annotations, it is possible to design an effective semantic parser. Our experiments on an Italian spoken dialog corpus, created within the LUNA project, show that our approach is able to automatically annotate unseen dialog turns with a high accuracy.
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