Sentiment Analysis of Russian IRA Troll Messages on Twitter during US Presidential Elections of 2016

Ussama Yaqub, Mujtaba Ali Malik, Salma Zaman
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引用次数: 2

Abstract

In this paper we evaluate the sentiment of messages by Russian Internet Research Agency (IRA) on Twitter discourse during US Presidential Elections of 2016 using VADER-a rule-based model for sentiment analysis of social media text. We use two datasets for analysis. The first consists of 51.3 million tweets collected during the US Elections of 2016 (October 30th, 2016-November 18th, 2016) and the second was shared by Twitter in October 2018, consisting of 8.77 million tweets generated by IRA accounts over a decade. We look for overlap of IRA tweets in the two datasets, evaluate their sentiment, and compare it with sentiment of other messages during that time period discussing the two Presidential candidates. Our findings show: (1) IRA tweets and retweets had a significantly positive sentiment towards Donald Trump and negative sentiment towards Hillary Clinton; (2) IRA messages mentioning Hillary Clinton had a more negative sentiment than non-IRA messages in our dataset.
2016年美国总统大选期间推特上俄罗斯IRA喷子信息的情绪分析
在本文中,我们使用vader -一种基于规则的社交媒体文本情感分析模型,评估了2016年美国总统选举期间俄罗斯互联网研究机构(IRA)在Twitter话语上的消息情绪。我们使用两个数据集进行分析。第一个由2016年美国大选期间(2016年10月30日- 2016年11月18日)收集的5130万条推文组成,第二个由Twitter于2018年10月分享,由IRA账户在十年中产生的877万条推文组成。我们在两个数据集中寻找IRA推文的重叠部分,评估它们的情绪,并将其与那段时间内讨论两位总统候选人的其他消息的情绪进行比较。研究结果表明:(1)IRA推文和转发推文对唐纳德·特朗普有显著的正面情绪,对希拉里·克林顿有显著的负面情绪;(2)在我们的数据集中,提到希拉里·克林顿的IRA消息比非IRA消息具有更多的负面情绪。
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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