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Web-enhanced Content Retrieval for Information Access Dialogue System

机译:信息访问对话系统的Web增强内容检索

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We consider the problem of content retrieval with complex queries for an information access dialogue system. Traditional information access dialogue systems rely on exact query matching and heuristic rules to find relevant content in a relational database. To deal with complex queries, a dialogue system is used to attain deep semantic processing such as full semantic parsing and ontology-based reasoning. However, these systems require a large amount of semantic annotation and domain expert knowledge that are often very expensive to obtain and thus have been limited in practice. In this paper, we present a simple alternative method where web-searched documents can contribute to enhanced vector space model-based content retrieval. Our model captures underlying cooccurrence patterns between the query and the contents. An efficient ranking algorithm is applied to retrieve the relevant contents. One merit of the proposed approach is that it does not require heavy semantic processing, and therefore, it results in efficient content retrieval. We demonstrate that our method is beneficial in an electronic program-guided dialogue system.
机译:我们考虑了信息访问对话系统中复杂查询的内容检索问题。传统的信息访问对话系统依靠精确的查询匹配和启发式规则来在关系数据库中找到相关内容。为了处理复杂的查询,使用对话系统来进行深度语义处理,例如完整的语义解析和基于本体的推理。但是,这些系统需要大量的语义注释和领域专家知识,而获取这些知识通常非常昂贵,因此在实践中受到限制。在本文中,我们提出了一种简单的替代方法,其中网络搜索的文档可以有助于增强的基于矢量空间模型的内容检索。我们的模型捕获查询和内容之间的潜在共现模式。应用有效的排序算法来检索相关内容。所提出的方法的一个优点是它不需要繁重的语义处理,因此,它可以实现有效的内容检索。我们证明了我们的方法在电子程序指导的对话系统中是有益的。

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