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Combining Lexical Stability and Improved Lexical Chain for Unsupervised Word Sense Disambiguation

机译:结合词法稳定性和改进的词法链以实现无监督的词义消歧

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Word Sense Disambiguation (WSD) is a traditional AI-hard problem. An improvement of WSD would have a significant impact on applications such as knowledge acquisition, text mining, information extraction, etc. Lexical chain holds a set of semantically related words of a text and provides an effective way for WSD, but existing lexical chain systems have inaccuracies in WSD for lacking a weighting scheme to measure the weights of word senses. In this paper, we propose a new unsupervised WSD method based on lexical stability and improved lexical chain. This method can disambiguate all words with a high accuracy. We evaluate the performance of our algorithm on SemCor corpus which is widely used for evaluating the accuracy of the WSD algorithm. Empirical results show that the algorithm can achieve a significant higher accuracy than state-of-the-art result.
机译:词义消歧(WSD)是传统的AI难题。 WSD的改进将对诸如知识获取,文本挖掘,信息提取等应用程序产生重大影响。词法链拥有一组与语义相关的文本单词,并为WSD提供了一种有效的方法,但是现有的词法链系统具有由于缺少一种加权方案来衡量词义的权重,因此在WSD中存在误差。本文提出了一种新的基于词法稳定性和改进词法链的无监督WSD方法。该方法可以高精度地消除所有单词的歧义。我们评估了SemCor语料库上算法的性能,该算法被广泛用于评估WSD算法的准确性。实验结果表明,该算法与最新技术相比,可以获得更高的准确度。

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