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Knowledge discovery in task-oriented dialogue

机译:面向任务的对话中的知识发现

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Knowledge discovery is the process of discovering useful knowledge in a broad range of sources, such as relational databases, images, or texts. Dialogues are generated by interaction between people using natural language and can be used as a source of information. Once discovered, knowledge needs to be represented, and there are several approaches to this. In this paper, we propose a method to discover knowledge in task-oriented dialogues by representing these dialogues through folksonomies, using a novel quadripartite model. Folksonomies are knowledge structures composed of users, tags, and resources. Dialogues and folksonomies have a social dimension in common, which renders folksonomies suited to representing knowledge discovered from dialogues. The knowledge represented by folksonomies can be used to interpret new utterances in a dialogue and detect trends, e.g., by discovering. Topics Addressed by people at different time intervals, in the dialogues used to learn the folksonomies. The main difference between our approach and past techniques is that we use the characteristics (the content) of each resource in the discovery process. Experiments involving a real-world task-oriented dialogue corpus showed that using our method, learned folksonomies can interpret utterances with an accuracy of 72.32%. Moreover, another experiment showed that it is possible to use our method to determine Topics Addressed by interlocutors in dialogues. (C) 2015 Elsevier Ltd. All rights reserved.
机译:知识发现是在广泛的资源中(例如关系数据库,图像或文本)发现有用知识的过程。对话是通过使用自然语言的人与人之间的互动而产生的,并且可以用作信息源。一旦发现知识,就需要对其进行表示,并且有几种方法可以实现。在本文中,我们提出了一种方法,该方法通过使用新颖的四方模型通过民俗分类法表示对话来发现面向任务的对话中的知识。民俗分类是由用户,标签和资源组成的知识结构。对话和民间分类法具有一个共同的社会维度,这使得民间分类法适合代表从对话中发现的知识。由民间分类法代表的知识可用于解释对话中的新话语,并例如通过发现来发现趋势。人们在用于学习民间音调法的对话中以不同的时间间隔演讲的主题。我们的方法与过去的技术之间的主要区别在于,我们在发现过程中使用每种资源的特征(内容)。涉及现实世界中面向任务的对话语料库的实验表明,使用我们的方法,学到的民俗分类法可以以72.32%的准确度解释话语。此外,另一个实验表明,可以使用我们的方法确定对话者在对话中解决的主题。 (C)2015 Elsevier Ltd.保留所有权利。

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