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A Grammar-Based Semantic Similarity Algorithm for Natural Language Sentences

机译:基于语法的自然语言语义相似度算法

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摘要

This paper presents a grammar and semantic corpus based similarity algorithm for natural language sentences. Natural language, in opposition to “artificial language”, such as computer programming languages, is the language used by the general public for daily communication. Traditional information retrieval approaches, such as vector models, LSA, HAL, or even the ontology-based approaches that extend to include concept similarity comparison instead of cooccurrence terms/words, may not always determine the perfect matching while there is no obvious relation or concept overlap between two natural language sentences. This paper proposes a sentence similarity algorithm that takes advantage of corpus-based ontology and grammatical rules to overcome the addressed problems. Experiments on two famous benchmarks demonstrate that the proposed algorithm has a significant performance improvement in sentences/short-texts with arbitrary syntax and structure.
机译:本文提出了一种基于语法和语义语料库的自然语言句子相似度算法。与“人工语言”相对的自然语言,例如计算机编程语言,是普通大众用于日常交流的语言。传统的信息检索方法,例如矢量模型,LSA,HAL,甚至扩展到包括概念相似性比较而不是共现术语/单词的基于本体的方法,在没有明显的关系或概念的情况下,可能并不总是确定完美匹配两个自然语言句子之间有重叠。本文提出了一种句子相似度算法,该算法利用基于语料库的本体和语法规则来克服所解决的问题。在两个著名基准测试上的实验表明,该算法在具有任意语法和结构的句子/短文本中具有显着的性能改进。

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