A Statistical Approach to Expandable Spoken Dialog Systems using WFSTs

Chiori Hori, Kiyonori Ohtake, Teruhisa Misu, H. Kashioka, Satoshi Nakamura
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引用次数: 1

Abstract

We have proposed an efficient approach to manage a dialog system using a weighted finite-state transducer (WFST) in which users¿ concept and system¿s action tags are input and output of the transducer, respectively. A WFST for dialog management was automatically created using a corpus annotated with inter-change format (IF) consisting of dialog acts and argument which is an interlingua for machine translation. A word-to-concept WFST for spoken language understanding (SLU) was created using the same corpus. The scenario and SLU WFSTs acquired from the corpus were composed together and then optimized. We have confirmed the WFST automatically trained using the annotated corpus can manage dialog reasonably.
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使用wfst的可扩展口语对话系统的统计方法
我们提出了一种使用加权有限状态传感器(WFST)来管理对话系统的有效方法,其中用户的概念和系统的动作标签分别是传感器的输入和输出。对话管理的WFST是使用由对话行为和参数组成的交换格式(IF)注释的语料库自动创建的,交换格式是机器翻译的中间语言。使用相同的语料库创建了用于口语理解(SLU)的单词到概念WFST。将从语料库中获取的情景和SLU WFSTs组合在一起,并进行优化。结果表明,使用标注语料库自动训练的WFST能够合理地管理对话。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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