首页> 外文会议>International Conference on Electrical, Computer and Communication Engineering >Looking Behind the Mask: A framework for Detecting Character Assassination via Troll Comments on Social media using Psycholinguistic Tools
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Looking Behind the Mask: A framework for Detecting Character Assassination via Troll Comments on Social media using Psycholinguistic Tools

机译:在面具后面看:一种通过心理语言工具在社交媒体上通过巨魔评论检测人物暗杀的框架

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With the facilities of social media platforms like Facebook, Twitter, Google+, YouTube etc. people are capable of expressing their views & news, sharing moments via photos, liking, commenting and sharing others posts. The online social networks (OSNs) are not only giving positive supports to its users, but also creating opportunities to assassin personals by the trolls. Trolls are usually the OSN users who try to hide themselves while doing bad comments, false accusations, starting controversies, spreading fake news or rumors which could be considered as character assassination of individuals. The online behavior of an OSN user could be tracked via his/her digital footprints. Though tracking huge number of users who are generating billions of textual and image data every day, could be considered as a challenging task. In this paper, we have proposed a novel detection system for identifying character assassination from social media platforms. The proposed method first predicts the personality traits using users' textual data. Therefore, LIWC, SlangNet, SentiWordNet, SentiStrength, Colloquial WordNet has been utilized as psycholinguistic tool. LIWC-based feature engineering has been performed on the comments of the trolls as well as the victim user. SlangNet and Colloquial WordNet is used for detecting English slang words in the comments as it is evident that slangs are the basic communicative way to defame someone.
机译:借助Facebook,Twitter,Google +,YouTube等社交媒体平台,人们可以表达自己的观点和新闻,通过照片分享时刻,喜欢,评论和分享其他帖子。在线社交网络(OSN)不仅为其用户提供了积极的支持,而且还创造了通过巨魔暗杀他人的机会。巨魔通常是OSN用户,他们试图在发表不良评论,虚假指控,引发争议,散布虚假新闻或谣言时隐瞒自己,这可被视为对个人的性格暗杀。 OSN用户的在线行为可以通过其数字足迹进行跟踪。尽管跟踪每天每天生成数十亿文本和图像数据的大量用户,但可以将其视为一项艰巨的任务。在本文中,我们提出了一种新颖的从社交媒体平台识别角色暗杀的检测系统。所提出的方法首先使用用户的文本数据来预测人格特征。因此,LIWC,SlangNet,SentiWordNet,SentiStrength,口语WordNet已被用作心理语言工具。基于LIWC的功能工程已经在巨魔以及受害用户的评论上执行。 SlangNet和口语WordNet用于检测评论中的英语语单词,因为很明显语是诽谤他人的基本交流方式。

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