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Grey sentiment analysis using SentiWordNet

机译:使用SentiWordNet进行灰色情绪分析

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摘要

Sentiment analysis is one of the most important topics in the Natural Language Processing field, aiming to determine whether a text expresses a positive, negative or neutral perception. In most sentiment analysis applications, a central role is played by the sentiment lexicons, which are lexical resources that include lists of tokens, together with the associated polarity score for each token or term. However, such approaches do not take into consideration the fact that a term might have distinct and sometimes even opposite sentiment polarities in different contexts. The present paper uses the grey system theory in order to associate terms with the most likely intervals of polarity, in order to enable a more accurate sentiment understanding, through grey sentiment analysis, even in limited information contexts, such as social media analysis.
机译:情感分析是“自然语言处理”领域中最重要的主题之一,旨在确定文本表达的是正面的,负面的还是中性的。在大多数情感分析应用程序中,情感词典扮演着核心角色,情感词典是包括令牌列表以及每个令牌或术语的关联极性得分的词汇资源。但是,这种方法没有考虑到一个术语在不同上下文中可能具有截然不同的,有时甚至是相反的情感极性这一事实。本文使用灰色系统理论,以便将术语与最可能的极性间隔相关联,从而即使在有限的信息环境(例如社交媒体分析)中,也可以通过灰色情感分析获得更准确的情感理解。

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