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Learning to Interrupt the User at the Right Time in Incremental Dialogue Systems

机译:学习在增量对话系统的正确时间中打断用户

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Continuous processing or input in incremental dialogue systems might result in the need of interrupting a user's utterance when clarification or rapport is needed. Being able to predict the right time when to interrupt the utterance can be another step to a more humanlike dialogue. On the other hand, annotation of corpora with different types of possible interruptions requires additional human resources. In this paper, we discuss how to process a corpus that does not have interruptions specifically annotated. We also present initial experiments on two corpora and show that it is possible to model the desired behaviour from these corpora.
机译:增量对话系统中的连续处理或输入可能导致需要在需要澄清或换附器时中断用户的话语。能够预测何时中断话语的正确时间可以是更为人性化对话的另一个步骤。另一方面,具有不同类型可能中断的Corpora的注释需要额外的人力资源。在本文中,我们讨论如何处理没有专门注释中断的语料库。我们还在两种Corpora上呈现初步实验,并表明可以将所需的行为模拟来自这些语料库。

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