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Construction of a Sentimental Word Dictionary

机译:情感词词典的构建

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摘要

The Web has plenty of reviews, comments and reports about products, services, government policies, institutions, etc. The opinions expressed in these reviews influence how people regard these entities. For example, a product with consistently good reviews is likely to sell well, while a product with numerous bad reviews is likely to sell poorly. Our aim is to build a sentimental word dictionary, which is larger than existing sentimental word dictionaries and has high accuracy. We introduce rules for deduction, which take words with known polarities as input and produce synsets (a set of synonyms with a definition) with polarities. The synsets with deduced polarities can then be used to further deduce the polarities of other words. Experimental results show that for a given sentimental word dictionary with D words, approximately an additional 50% of D words with polarities can be deduced. An experiment is conducted to find the accuracy of a random sample of the deduced words. It is found that the accuracy is about the same as that of comparing the judgment of one human with that of another.
机译:Web上有大量有关产品,服务,政府政策,机构等的评论,评论和报告。这些评论中表达的观点会影响人们对这些实体的看法。例如,具有一致好评的产品很可能会卖得很好,而具有很多不良评论的产品很可能会卖得不好。我们的目标是建立一个比现有的情感词典更大,精度更高的情感词典。我们介绍了演绎规则,该规则将具有已知极性的单词作为输入,并产生具有极性的同义词集(一组具有定义的同义词)。具有推论极性的同义词然后可以用来进一步推论换句话说极性。实验结果表明,对于给定的带有D个单词的情感单词字典,可以推导出大约50%的带有极性的D单词。进行实验以找到推导单词的随机样本的准确性。发现该准确性与将一个人的判断与另一个人的判断进行比较的准确性大致相同。

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