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A semantic Bayesian network approach to retrieving information with intelligent conversational agents

机译:使用智能对话代理检索信息的语义贝叶斯网络方法

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As access to information becomes more intensive in society, a great deal of that information is becoming available through diverse channels. Accordingly, users require effective methods for accessing this information. Conversational agents can act as effective and familiar user interfaces. Although conversational agents can analyze the queries of users based on a static process, they cannot manage expressions that are more complex. In this paper, we propose a system that uses semantic Bayesian networks to infer the intentions of the user based on Bayesian networks and their semantic information. Since conversation often contains ambiguous expressions, the managing of context and uncertainty is necessary to support flexible conversational agents. The proposed method uses mixed-initiative interaction (MII) to obtain missing information and clarify spurious concepts in order to understand the intention of users correctly. We applied this to an information retrieval service for websites to verify the usefulness of the proposed method. (c) 2006 Elsevier Ltd. All rights reserved.
机译:随着社会中对信息的获取越来越密集,可以通过多种渠道获得大量信息。因此,用户需要用于访问该信息的有效方法。对话代理可以充当有效且熟悉的用户界面。尽管会话代理可以基于静态过程来分析用户的查询,但它们无法管理更复杂的表达式。在本文中,我们提出了一种基于贝叶斯网络及其语义信息的,使用语义贝叶斯网络来推断用户意图的系统。由于对话通常包含歧义的表达,因此需要对上下文和不确定性进行管理以支持灵活的对话代理。提出的方法使用混合启动交互(MII)来获取丢失的信息并弄清虚假的概念,以便正确理解用户的意图。我们将此应用于网站的信息检索服务,以验证所提出方法的有效性。 (c)2006 Elsevier Ltd.保留所有权利。

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