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Grounding the detection of the user's likes and dislikes on the topic structure of human-agent interactions

机译:基于人与物交互的主题结构来检测用户的好恶

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This paper introduces a knowledge-based system which grounds the detection of the user's likes and dislikes on the topic structure of the conversation. The targeted study is set in a human-agent interaction with the aim to help the creation of dialogue strategies of an agent based on the user's interests. In this paper, we first describe the system based on linguistic resources such as lexicons, dependency grammars and dialogue information provided by the dialogue system. Second, we explain how the system merges its outputs at the end of each topic sequence. Finally, we present an evaluation of both the linguistic rules and the merging process. The system enables a better identification of the target of the user's likes and dislikes and provides a synthetic representation of the user's interests. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文介绍了一个基于知识的系统,该系统基于对会话主题结构的检测用户的好恶。这项有针对性的研究设置在人与人之间的互动中,旨在帮助基于用户的兴趣创建人的对话策略。在本文中,我们首先描述基于语言资源的系统,例如词典提供的依赖关系语法和对话信息。其次,我们说明系统如何在每个主题序列的末尾合并其输出。最后,我们对语言规则和合并过程进行了评估。该系统能够更好地识别用户喜欢和不喜欢的目标,并提供用户兴趣的综合表示。 (C)2016 Elsevier B.V.保留所有权利。

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