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Assessing sentence similarity through lexical, syntactic and semantic analysis

机译:通过词汇,句法和语义分析评估句子相似度

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摘要

The degree of similarity between sentences is assessed by sentence similarity methods. Sentence similarity methods play an important role in areas such as summarization, search, and categorization of texts, machine translation, etc. The current methods for assessing sentence similarity are based only on the similarity between the words in the sentences. Such methods either represent sentences as bag of words vectors or are restricted to the syntactic information of the sentences. Two important problems in language understanding are not addressed by such strategies: the word order and the meaning of the sentence as a whole. The new sentence similarity assessment measure presented here largely improves and refines a recently published method that takes into account the lexical, syntactic and semantic components of sentences. The new method was benchmarked using Li-McLean, showing that it outperforms the state of the art systems and achieves results comparable to the evaluation made by humans. Besides that, the method proposed was extensively tested using the SemEval 2012 sentence similarity test set and in the evaluation of the degree of similarity between summaries using the CNN-corpus. In both cases, the measure proposed here was proved effective and useful.
机译:句子之间的相似度通过句子相似度方法进行评估。句子相似度方法在诸如文本的摘要,搜索和分类,机器翻译等领域中起着重要作用。当前评估句子相似度的方法仅基于句子中单词之间的相似度。这样的方法要么将句子表示为单词向量袋,要么将其限于句子的句法信息。这种策略不能解决语言理解中的两个重要问题:单词顺序和整个句子的含义。这里提出的新的句子相似性评估方法在很大程度上改进和完善了最近发布的方法,该方法考虑了句子的词法,句法和语义成分。该新方法使用Li-McLean进行了基准测试,表明其性能优于现有系统,并获得了与人类评估结果相当的结果。除此之外,使用SemEval 2012句子相似性测试集对提出的方法进行了广泛测试,并使用CNN语料库评估了摘要之间的相似度。在这两种情况下,这里提出的措施都被证明是有效和有用的。

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