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Identifying implicit relationships

机译:识别隐式关系

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Answering natural-language questions may often involve identifying hidden associations and implicit relationships. In some cases, an explicit question is asked by the user to discover some hidden concept related to a set of entities. Answering the explicit question and identifying the implicit entity both require the system to discover the semantically related but hidden concepts in the question. In this paper, we describe a spreading-activation approach to concept expansion, backed by three distinct knowledge resources for measuring semantic relatedness. We discuss how our spreading-activation approach is applied to address these questions, exemplified in Jeopardy!™ by questions in the “COMMON BONDS” category and by many Final Jeopardy! questions. We demonstrate the effectiveness of the approach by measuring its impact on IBM Watson™ performance on these questions.
机译:回答自然语言问题通常可能涉及识别隐藏的关联和隐式关系。在某些情况下,用户会提出一个明确的问题来发现一些与一组实体相关的隐藏概念。回答显式问题和识别隐式实体都需要系统发现问题中与语义相关但隐藏的概念。在本文中,我们描述了一种用于概念扩展的扩展激活方法,该方法以三个不同的知识资源为后盾,用于测量语义相关性。我们讨论了如何将我们的扩散激活方法用于解决这些问题,例如Jeopardy!™中“ COMMON BONDS”类别的问题以及许多Final Jeopardy!问题。我们通过评估这些问题对IBM Watson™性能的影响来证明该方法的有效性。

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