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A word sense disambiguation method for feature level sentiment analysis

机译:特征层次情感分析的词义消歧方法

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Sentiment analysis is an automatic method used to determine that the opinion of a person about a subject is positive or negative. One of the most important tasks in sentiment analysis is to disambiguate the sense of words according to context. Most errors in sentiment analysis are because of improper sense disambiguation. Few methods for this purpose have been proposed in literature. However, they are not able to properly determine the context of word in a sentence. In addition, the lexicon dictionaries used by these methods lack word senses and also do not provide a context matching technique. These issues need to be addressed in order to improve the performance of sentiment analysis so that it can be used by customers and manufacturers for decision making. In this paper, we propose a feature level sentiment analysis system, which produces a summary of opinions about product features. A word sense disambiguation method is introduced which accurately determines the sense of a word within a context while determining the polarity. In addition, a heuristic based method is proposed in order to determine the text where opinion about a product feature is expressed. The results show that the proposed methods achieve better accuracy than existing methods.
机译:情感分析是一种自动方法,用于确定一个人对某个主题的看法是正面还是负面。情感分析中最重要的任务之一是根据上下文消除单词的歧义。情感分析中的大多数错误是由于不恰当的歧义消除所致。文献中很少提出用于该目的的方法。但是,他们无法正确确定句子中单词的上下文。此外,这些方法使用的词典词典缺少单词含义,也没有提供上下文匹配技术。为了提高情感分析的性能,需要解决这些问题,以便客户和制造商可以将其用于决策。在本文中,我们提出了一种功能级别的情感分析系统,该系统可生成有关产品功能的意见摘要。引入了词义消歧方法,该方法在确定极性的同时准确地确定上下文中的词义。另外,提出了一种基于启发式的方法,以便确定表达关于产品特征的意见的文本。结果表明,所提出的方法比现有方法具有更好的准确性。

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