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Introducing External Knowledge to Answer Questions with Implicit Temporal Constraints over Knowledge Base

机译:引入外部知识以回答知识库上隐含的时间限制问题

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Knowledge base question answering (KBQA) aims to analyze the semantics of natural language questions and return accurate answers from the knowledge base (KB). More and more studies have applied knowledge bases to question answering systems, and when using a KB to answer a natural language question, there are some words that imply the tense (e.g., original and previous) and play a limiting role in questions. However, most existing methods for KBQA cannot model a question with implicit temporal constraints. In this work, we propose a model based on a bidirectional attentive memory network, which obtains the temporal information in the question through attention mechanisms and external knowledge. Specifically, we encode the external knowledge as vectors, and use additive attention between the question and external knowledge to obtain the temporal information, then further enhance the question vector to increase the accuracy. On the WebQuestions benchmark, our method not only performs better with the overall data, but also has excellent performance regarding questions with implicit temporal constraints, which are separate from the overall data. As we use attention mechanisms, our method also offers better interpretability.
机译:知识库问题应答(KBQA)旨在分析自然语言问题的语义,并从知识库(KB)退回准确的答案。越来越多的研究已经应用了知识库来解决问题,并且当使用KB回答自然语言问题时,有一些词语意味着紧张(例如,原件和以前)并在问题中发挥限制作用。但是,KBQA的大多数现有方法都无法使用隐式时间约束来模拟一个问题。在这项工作中,我们提出了一种基于双向周度存储网络的模型,通过注意机制和外部知识来获得问题中的时间信息。具体而言,我们将外部知识编码为向量,并在问题和外部知识之间使用添加剂注意以获得时间信息,然后进一步增强问题向量以提高准确性。在WebQuestions基准测试中,我们的方法不仅可以更好地执行整体数据,而且还具有出色的关于隐式时间约束的问题的性能,这些问题与整体数据分开。当我们使用注意机制时,我们的方法也提供了更好的解释性。

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