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Recognizing Inference in Texts with Markov Logic Networks

机译:用马尔可夫逻辑网络识别文本中的推论

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Recognizing inference in texts (RITE) attracts growing attention of natural language processing (NLP) researchers in recent years. In this article, we propose a novel approach to recognize inference with probabilistic logical reasoning. Our approach is built on Markov logic networks (MLNs) framework, which is a probabilistic extension of first-order logic. We design specific semantic rules based on the surface, syntactic, and semantic representations of texts, and map these rules to logical representations. We also extract information from some knowledge bases as common sense logic rules. Then we utilize MLNs framework to make predictions with combining statistical and logical reasoning. Experiment results shows that our system can achieve better performance than state-of-the-art RITE systems.
机译:近年来,识别文本推理(RITE)引起了自然语言处理(NLP)研究人员的越来越多的关注。在本文中,我们提出了一种新颖的方法来识别概率逻辑推理的推理。我们的方法基于马尔可夫逻辑网络(MLN)框架,它是一阶逻辑的概率扩展。我们基于文本的表面,句法和语义表示设计特定的语义规则,并将这些规则映射到逻辑表示。我们还从一些知识库中提取信息作为常识逻辑规则。然后,我们利用MLNs框架结合统计和逻辑推理进行预测。实验结果表明,与最新的RITE系统相比,我们的系统可以实现更好的性能。

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