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Contextual Ontology Module Learning from Web Snippets and Past User Queries

机译:从Web片段和过去的用户查询中学习上下文本体模块

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In this paper, we focus on modularization aspects for query reformulation in ontology-based question answering on the Web. The main objective is to automatically learn ontology modules that cover search terms of the user. Indeed, the main problem is that current approaches of ontology modularization consider only the input existant ontologies, instead of underlying semantics found in texts. This work proposes an approach of contextual ontology module learning covering particular search terms by analyzing past user queries and snippets provided by search engines. The obtained contextual modules will be used for query reformulation. The proposal has been evaluated on the ground of semantic cotopy measure of discovered ontology modules, relevance of search results.
机译:在本文中,我们专注于模块化方面,用于在Web上基于本体的问题回答中重新编制查询。主要目的是自动学习涵盖用户搜索词的本体模块。确实,主要问题是当前的本体模块化方法仅考虑输入的现有本体,而不考虑文本中的基础语义。这项工作提出了一种通过分析过去的用户查询和搜索引擎提供的摘录来覆盖特定搜索词的上下文本体模块学习方法。所获得的上下文模块将用于查询重构。该提议已基于发现的本体模块的语义共足度量,搜索结果的相关性进行了评估。

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