使用POMDP框架的消费者评级系统中的最优对话

Zhifei Li, Patrick Nguyen, G. Zweig
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引用次数: 2

摘要

Voice-Rate是一个实验性的对话系统,用户可以通过它来获取产品信息。在本文中,我们描述了一种最优的语音速率对话管理算法。我们的算法使用POMDP框架,该框架是概率的,并捕获语音识别和用户知识中的不确定性。提出了一种从评论数据库中学习用户知识模型的新方法。仿真结果表明,POMDP系统在对话失败率和对话交互时间方面都明显优于确定性基线系统。据我们所知,我们的工作是第一个表明POMDP可以成功地用于语音率等复杂语音搜索领域的消歧。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Dialog in Consumer-Rating Systems using POMDP Framework
Voice-Rate is an experimental dialog system through which a user can call to get product information. In this paper, we describe an optimal dialog management algorithm for Voice-Rate. Our algorithm uses a POMDP framework, which is probabilistic and captures uncertainty in speech recognition and user knowledge. We propose a novel method to learn a user knowledge model from a review database. Simulation results show that the POMDP system performs significantly better than a deterministic baseline system in terms of both dialog failure rate and dialog interaction time. To the best of our knowledge, our work is the first to show that a POMDP can be successfully used for disambiguation in a complex voice search domain like Voice-Rate.
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