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Probabilistic Word Vector and Similarity Based on Dictionaries

机译:基于词典的概率词矢量和相似性

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We propose a new method for computing the probabilistic vector expression of words based on dictionaries. This method provides a well-founded procedure based on stochastic process whose applicability is clear. The proposed method exploits the relationship between head-words and their explanatory notes in dictionaries. An explanatory note is a set of other words, each of which is expanded by its own explanatory note. This expansion is repeatedly applied, but even explanatory notes expanded infinitely can be computed under a simple assumption. The vector expression we obtain is a semantic expansion of the explanatory notes of words. We explain how to acquire the vector expression from these expanded explanatory notes. We also demonstrate a word similarity computation based on a Japanese dictionary and evaluate it in comparison with a known system based on TF·IDF. The results show the effectiveness and applicability of this probabilistic vector expression.
机译:我们提出了一种基于词典计算单词的概率矢量表达的新方法。该方法提供了基于随机过程的良好成立的程序,其适用性清晰。该方法利用了字典中的头单词与其解释性备注之间的关系。解释性说明是一组其他单词,每个单词由其自己的解释性说明扩展。这种扩展被重复应用,但甚至可以在简单的假设下计算不确定的解释性说明。我们获得的矢量表达是单词解释性说明的语义扩展。我们解释了如何从这些扩展的解释性说明中获取矢量表达式。我们还基于日语字典演示了一个单词相似性计算,并与基于TF·IDF的已知系统进行评估。结果表明该概率载体表达的有效性和适用性。

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