使用机器学习方法和Naïve贝叶斯分类器对Twitter上关于新闻标题的帖子进行情感分析综述

Thinesharan Vaseeharan, A. Aponso
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引用次数: 3

摘要

在当今世界有如此多的微博网站,其中twitter是最受欢迎的网站之一。它已成为所有个人、政治家、公司、名人等的重要组成部分。几乎所有的主要新闻媒体都有Twitter账户,在那里他们为他们的追随者发布新闻标题。拥有Twitter账户的人可以回复或转发新闻标题。拥有Twitter账户的用户还可以发布来自任何其他新闻媒体的新闻标题。当人们在Twitter上发布、回复或转发新闻帖子时,很明显他们是在通过这种方式表达自己的情绪。本文的主要目的是提取人们对Twitter上特定新闻的主观性意见。特别地,它的兴趣在于确定Twitter帖子对特定新闻的情绪。本文探索Naïve用于文本分类的贝叶斯分类器以及应用于Twitter数据及其结果的各种Twitter特定情感分析研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Review On Sentiment Analysis of Twitter Posts About News Headlines Using Machine Learning Approaches and Naïve Bayes Classifier
In today's world there are so much micro blogging sites, among all twitter is one of the popular site. It has become an important part for all individuals, politicians, companies, celebrities, etc. Almost all the major news outlets have Twitter account where they post news headlines for their followers. People with Twitter accounts can reply or retweet the news headlines. Twitter users who have an account can also post news headlines from any other news outlets. When people post, reply or retweet news posts on Twitter, it is obvious that they are expressing their sentiments through that. The main aim of the paper is to extract subjectivity of opinions of people about particular news in Twitter. Specially, the interest is in determining the sentiment of Twitter posts about particular news. This paper Explores Naïve Bayes Classifier for textual classification and various twitter-specific sentiment analysis studies applied to Twitter data and their Outcomes.
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