Exploiting Chi Square Method for Sentiment Analysis of Product Reviews

Nilesh M. Shelke, Shrinivas P. Deshpande
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Abstract

Sentiment analysis is an extension of data mining which employs natural language processing and information extraction task to recognize people's opinion towards entities such as products, services, issues, organizations, individuals, events, topics, and their attributes. It gives the summarized opinion of a writer or speaker. It has received lot of attention due to increasing number of posts/tweets on social sites. The proposed system is meant to classify a given text of review into positive, negative, or the neutral category. Primary objective of this article is to provide a method of exploiting permutation and combination and chi values for sentiment analysis of product reviews. Publicly available freely dictionary SentiWordNet 3.0 has been used for review classification. The proposed system is domain independent and context aware. Another objective of the proposed system is to identify the feature specific intensity with which reviewer has expressed his opinion. Effectiveness of the proposed system has been verified through performance matrix and compared with other research work.
基于卡方方法的产品评论情感分析
情感分析是数据挖掘的扩展,它采用自然语言处理和信息提取任务来识别人们对产品、服务、问题、组织、个人、事件、话题及其属性等实体的看法。它给出了作者或演讲者的总结意见。由于社交网站上越来越多的帖子/推文,它受到了很多关注。拟议的系统旨在将给定的评论文本分为正面、负面或中性类别。本文的主要目的是为产品评论的情感分析提供一种利用排列组合和chi值的方法。公开的免费词典SentiWordNet 3.0已被用于评论分类。该系统是独立于领域和上下文的。所建议的系统的另一个目标是确定审稿人表达其意见的特征的具体强度。通过性能矩阵验证了系统的有效性,并与其他研究工作进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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