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Semantic Similarity Computation Based on Multi-feature Combination using HowNet

机译:知网基于多特征组合的语义相似度计算

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Semantic similarity between words is becoming a generic problems for many applications of computational linguistics and artificial intelligence. The difficulty lies in how to develop a computational method that is capable of generating satisfactory results close to how humans perceive. This paper proposes a semantic similarity approach that is based on multi-feature combination. One of the benchmarks is Miller and Charles’ list of 30 noun pairs which had been manually designated similarity measurements. We correlate our experiments with those computed by several other methods. Experiments on Chinese word pairs show that our approach is close to human similarity judgments.
机译:对于计算语言学和人工智能的许多应用,单词之间的语义相似性正成为一个普遍的问题。困难在于如何开发一种计算方法,该方法能够产生令人满意的结果,接近人类的感知。本文提出了一种基于多特征组合的语义相似度方法。基准之一是Miller和Charles列出的30个名词对,它们是由人工指定的相似性度量。我们将实验与通过其他几种方法计算出的实验进行关联。对中文单词对的实验表明,我们的方法接近于人类相似性的判断。

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