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Ontology-Based Understanding of Natural Language Queries Using Nested Conceptual Graphs

机译:使用嵌套概念图的基于本体的自然语言查询理解

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In a question answering system, users always prefer entering queries in natural language and not being constrained by a rigorous grammar. This paper proposes a syntax-free method for natural language query understanding that is robust to ill-formed questions. Nested conceptual graphs are defined as a formal target language to represent not only simple queries, but also connective, superlative, and counting queries. The method exploits knowledge of an ontology to recognize entities and determine their relations in a query. With smooth mapping to and from natural language, conceptual graphs simplify conversion rules from natural language queries and can be easily converted to other formal query languages. Experimental results of the method on the QA track datasets of TREC 2002 and TREC 2007 are presented and discussed.
机译:在问答系统中,用户始终喜欢以自然语言输入查询,而不受严格语法的约束。本文提出了一种用于自然语言查询理解的无语法方法,该方法对格式错误的问题具有鲁棒性。嵌套的概念图被定义为一种正式的目标语言,它不仅表示简单的查询,而且还表示连接查询,最高级查询和计数查询。该方法利用本体的知识来识别实体并确定其在查询中的关系。通过与自然语言之间的平滑映射,概念图简化了自然语言查询的转换规则,并且可以轻松转换为其他形式的查询语言。介绍并讨论了该方法在TREC 2002和TREC 2007的QA轨道数据集上的实验结果。

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