首页> 外文会议>Annual conference of the International Speech Communication Association;INTERSPEECH 2011 >Detection of task-incomplete dialogs based on utterance-and-behavior tag N-gram for spoken dialog systems
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Detection of task-incomplete dialogs based on utterance-and-behavior tag N-gram for spoken dialog systems

机译:基于语音和行为标签N-gram的口语对话系统检测任务不完整的对话

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We propose a method of detecting "task incomplete" dialogs in spoken dialog systems using N-gram-based dialog models. We used a database created during a field test in which inexperienced users used a client-server music retrieval system with a spoken dialog interface on their own PCs. In this study, the dialog for a music retrieval task consisted of a sequence of user and system tags that related their utterances and behaviors. The dialogs were manually classified into two classes: the dialog either completed the music retrieval task or it didn't. We then detected dialogs that did not complete the task, using N-gram probability models or a Support Vector Machine with N-gram feature vectors trained using manually classified dialogs. Offline and on-line detection experiments were conducted on a large amount of real data, and the results show that our proposed method achieved good classification performance.
机译:我们提出了一种使用基于N元语法的对话模型在口语对话系统中检测“任务不完整”对话的方法。我们使用了在现场测试期间创建的数据库,在该数据库中,经验不足的用户在自己的PC上使用带有口语对话界面的客户端-服务器音乐检索系统。在这项研究中,音乐检索任务的对话框由一系列与用户话语和行为相关的用户标签和系统标签组成。对话框被手动分为两类:对话框要么完成了音乐检索任务,要么没有完成。然后,我们使用N-gram概率模型或带有通过手动分类对话框训练的N-gram特征向量的支持向量机,检测未完成任务的对话框。对大量真实数据进行了离线和在线检测实验,结果表明我们提出的方法具有良好的分类性能。

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