洞察煽动:对印度Twitter上危险言论的计算视角

Saloni Dash, Rynaa Grover, Gazal Shekhawat, Sukhnidh Kaur, Dibyendu Mishra, J. Pal
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引用次数: 3

摘要

社交媒体平台上的危险言论可以被认为是公然煽动性的,或者是含沙射影的。它也与谁参与其中密切相关——它可以由公开的宗派社交媒体账户驱动,也可以通过有影响力的账户的微妙推动,允许以复杂的方式加强对边缘化群体的诋毁,这是全球南方媒体环境中日益严重的问题。我们识别了印度Twitter上有影响力的账户围绕三个关键事件发表的危险言论,检查了宽恕或积极促进针对弱势群体的暴力行为的语言和信息网络。我们通过分配危险放大信念分数来表征危险言论用户,并表明危险用户在Twitter上比其他用户更活跃,并且在网络中最有影响力,就更大的追随者和验证账户数量而言。我们发现,危险的用户有更两极分化的观众,这表明他们的观众更容易受到煽动。使用网络中心性测量和定性分析的混合方法,我们发现最危险的账户往往要么从事与大众媒体相关的职业,要么与低级右倾政客结盟,并在网络中充当“广播员”,在那里他们处于最有利的位置,可以率先在整个平台上快速传播危险言论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights Into Incitement: A Computational Perspective on Dangerous Speech on Twitter in India
Dangerous speech on social media platforms can be framed as blatantly inflammatory, or be couched in innuendo. It is also centrally tied to who engages it – it can be driven by openly sectarian social media accounts, or through subtle nudges by influential accounts, allowing for complex means of reinforcing vilification of marginalized groups, an increasingly significant problem in the media environment in the Global South. We identify dangerous speech by influential accounts on Twitter in India around three key events, examining both the language and networks of messaging that condones or actively promotes violence against vulnerable groups. We characterize dangerous speech users by assigning Danger Amplification Belief scores and show that dangerous users are more active on Twitter as compared to other users as well as most influential in the network, in terms of a larger following as well as volume of verified accounts. We find that dangerous users have a more polarized viewership, suggesting that their audience is more susceptible to incitement. Using a mix of network centrality measures and qualitative analysis, we find that most dangerous accounts tend to either be in mass media related occupations or allied with low-ranking, right-leaning politicians, and act as “broadcasters” in the network, where they are best positioned to spearhead the rapid dissemination of dangerous speech across the platform.
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