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Knowledge Elicitation for Query Refinement in a Semantic-Enabled E-Marketplace

机译:启用语义电子市场中查询精制的知识诱惑

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摘要

In this paper we present a knowledge-based approach to the elicitation of information from advertisements, in the framework of a semantic-enabled marketplace. The elicited information can be used for advertisements enriching and refining, without requiring users thorough knowledge of the domain, and to determine a logicbased exact match. The approach exploits non-standard inference services in Description Logics, namely Abduction and Contraction, to tackle a typical problem of semantic-enabled marketplaces, that is the difficulty the average or casual user has in exploiting all the knowledge expressed in an e-commerce domain, which appears necessary to issue requests. We present an algorithm, which returns the set of concepts not included in the request -that can be used for query refinement- and more interesting what is still missing for each available supply, to obtain an exact, bidirectional, match.
机译:在本文中,我们在语义启用的市场框架中介绍了一种基于知识的信息诱导信息。引出的信息可用于丰富和炼制的广告,而无需用户对域的全密知识,并确定逻辑准确匹配。该方法利用了描述逻辑,即绑架和收缩中的非标准推理服务,以解决一个典型的启用语义的市场问题,这是平均或临时用户在利用电子商务域中所表达的所有知识方面的困难,似乎有必要发出请求。我们呈现了一种算法,它返回未包含在请求中的概念集 - 该组件可用于查询细化 - 并且更有趣的是每个可用供应仍然缺少的内容,以获得精确的,双向匹配。

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