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A Semantic Logic-Based Approach to Determine Textual Similarity

机译:基于语义逻辑的文本相似性确定方法

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摘要

This paper presents a semantic logic-based approach to determine textual similarity. Three logic form transformations taking into account semantic structure of sentences are proposed. Logic proofs are obtained using an adapted resolution step that drops predicates when a proof cannot be found with standard resolution. Features are extracted from proofs and combined using supervised machine learning to obtain the final similarity scores. Experimental results show that taking into account semantic relations to determine textual similarity yields performance improvements with respect to both baselines and third-party state-of-the-art systems. Specific sentence pairs that benefit from considering semantic relations are discussed. Detailed results provide empirical evidence that either proof direction offers a strong baseline although considering both is beneficial, and that ignoring concepts that are not an argument of a semantic relation is not sound.
机译:本文提出了一种基于语义逻辑的方法来确定文本相似性。提出了考虑句子语义结构的三种逻辑形式转换。逻辑证明是使用适应性解决步骤获得的,当无法使用标准分辨率找到证明时,该步骤会丢弃谓词。从证明中提取特征,并使用监督机器学习对其进行组合,以获得最终的相似度分数。实验结果表明,考虑到语义关系来确定文本的相似性,相对于基准线和第三方最新系统,都可以提高性能。讨论了受益于语义关系的特定句子对。详细的结果提供了经验证据,尽管考虑到两者都是有益的,但任何一个证明方向都可以提供强有力的基线,并且忽略不是语义关系的论点的概念也不是合理的。

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