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A Technique to Handle Negation in Sentiment Analysis on Movie Reviews

机译:电影评论情感分析中的否定处理技术

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Day by day there is seen large growth in sentiment rich social and electronic media. Researchers have increasing interest in vast amount of user data generated such as comments, customer reviews and opinions which can be used to extract valuable information with the help of sentiment analysis and opinion mining. The negation modifiers make the Sentiment Classification approaches suffer and they can completely distort the meaning of the discourse. Hence it becomes mandatory to handle them effectively. Our work provides an approach for the identification and handling negation in unstructured data. The paper proposes and evaluates better modified approach for negation identification in sentiment analysis than the existing identification methods. The provided data which is stored in document is fed into a vector and if the data has negation, it is treated exceptionally. Both syntactic and morphologic negation is handled using dependency parse tree and prefix algorithm respectively. We have attainted an accuracy of 92% from our work.
机译:情绪日益丰富的社交和电子媒体每天都在大量增长。研究人员对生成的大量用户数据(例如评论,客户评论和意见)越来越感兴趣,这些数据可用于通过情感分析和观点挖掘来提取有价值的信息。否定修饰语使“情感分类”方法受苦,它们可以完全扭曲话语的含义。因此,有效地处理它们成为强制性的。我们的工作为识别和处理非结构化数据中的否定提供了一种方法。与现有的识别方法相比,本文提出并评估了情感分析中否定识别的改进方法。将存储在文档中的提供的数据馈送到向量中,如果数据为负数,则将对其进行特殊处理。句法否定和形态学否定分别使用相关性解析树和前缀算法来处理。我们的工作达到了92%的准确性。

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