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Ranking Multiple Dialogue States by Corpus Statistics to Improve Discourse Understanding in Spoken Dialogue Systems

机译:通过语料库统计对多个对话状态进行排名,以提高口语对话系统中的话语理解能力

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This paper discusses the discourse understanding process in spoken dialogue systems. This process enables a system to understand user utterances from the context of a dialogue. Ambiguity in user utterances caused by multiple speech recognition hypotheses and parsing results sometimes makes it difficult for a system to decide on a single interpretation of a user intention. As a solution, the idea of retaining possible interpretations as multiple dialogue states and resolving the ambiguity using succeeding user utterances has been proposed. Although this approach has proven to improve discourse understanding accuracy, carefully created hand-crafted rules are necessary in order to accurately rank the dialogue states. This paper proposes automatically ranking multiple dialogue states using statistical information obtained from dialogue corpora. The experimental results in the train ticket reservation and weather information service domains show that the statistical information can significantly improve the ranking accuracy of dialogue states as well as the slot accuracy and the concept error rate of the top-ranked dialogue states.
机译:本文讨论了口语对话系统中的话语理解过程。该过程使系统能够从对话的上下文中理解用户的话语。由多个语音识别假设和分析结果引起的用户话语含糊不清有时会使系统难以决定对用户意图的单一解释。作为解决方案,已经提出了将可能的解释保留为多个对话状态并使用后续的用户话语解决歧义的想法。尽管这种方法已被证明可以提高话语理解的准确性,但是为了准确地对对话状态进行排名,必须精心创建手工制定的规则。本文提出使用从对话语料库获得的统计信息自动对多个对话状态进行排名。在火车票预订和天气信息服务领域的实验结果表明,统计信息可以显着提高对话状态的排名准确性,以及排名最高的对话状态的时段准确性和概念错误率。

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