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Research on keyword extraction based on Word2Vec weighted TextRank

机译:基于Word2Vec加权TextRank的关键词提取研究

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In this paper, we do a research on the keyword extraction method of news articles. We build a candidate keywords graph model based on the basic idea of TextRank, use Word2Vec to calculate the similarity between words as transition probability of nodes' weight, calculate the word score by iterative method and pick the top N of the candidate keywords as the final results. Experimental results show that the weighted TextRank algorithm with correlation of words can improve performance of keyword extraction generally.
机译:本文对新闻文章的关键词提取方法进行了研究。我们基于TextRank的基本思想建立了候选关键词图模型,使用Word2Vec来计算词之间的相似度,作为节点权重的转移概率,通过迭代的方法计算出词的分数,最后选择候选词的前N个作为最终词。结果。实验结果表明,具有词相关性的加权TextRank算法通常可以提高关键词提取的性能。

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