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Sentiment analysis of microblog combining dictionary and rules

机译:字典与规则相结合的微博情感分析

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Microblog has become a daily communication tool in recent years. Researches on microblog have drawn more and more attention. Microblogging emotional classification is a major research of user intent analysis based on User-Generated Content (UGC). This paper focuses on the discrimination on two emotional tendencies: positive and negative. Firstly, the system cleared the noisy elements in the microblog, then extracted the features of the microblog and finally classified the microblog using Support Vector Machine (SVM). Furthermore, we improve the algorithms of feature extraction and weight computing combining dictionary approach and rule based approach. The result of experiment shows that the method is effective.
机译:近年来,微博客已成为日常交流工具。微博的研究越来越受到人们的关注。微博情感分类是基于用户生成内容(UGC)的用户意图分析的一项主要研究。本文着重于对两种情感倾向的歧视:积极和消极。首先,系统清除微博中的噪音元素,然后提取微博的特征,最后使用支持向量机(SVM)对微博进行分类。此外,我们结合字典方法和基于规则的方法改进了特征提取和权重计算的算法。实验结果表明该方法是有效的。

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