Assessing the Surge in COVID-19-Related Cyberbullying on Twitter: A Generalized Additive Model Approach

Yavuz Selim BALCIOĞLU, Kültigin AKÇİN
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Abstract

The COVID-19 pandemic's onset and the subsequent lockdowns drastically amplified digital interactions worldwide. These unparalleled shifts in online behavior birthed concerns about potential surges in cybersecurity threats, particularly cyberbullying. Our research aimed to explore these proposed trends on Twitter. Utilizing a dataset of 126,348 tweets from January 1st to September 12th, 2020, we honed in on 27 cyberbullying-related keywords, like 'online bullying' and 'cyberbullying'. Recognizing the limitations of traditional change-point models, we opted for a Generalized Additive Model (GAM) with spline-based smoothers. The results were revealing. A significant uptick in cyberbullying instances emerged starting mid-March, correlating with the global lockdown mandates. This consistent trend was evident across all our targeted keywords. To bolster our findings, we conducted lag-based assessments and compared the GAM against other modeling approaches. Our conclusions robustly indicate a strong association between the enforcement of pandemic lockdowns and a heightened prevalence of cyberbullying on Twitter. The implications are clear: global crises necessitate intensified cyber vigilance, and the digital realm's safety becomes even more paramount during such challenging times.
评估Twitter上与covid -19相关的网络欺凌激增:一种广义加性模型方法
2019冠状病毒病大流行的爆发和随后的封锁大大扩大了全球范围内的数字互动。网络行为的这些前所未有的转变引发了人们对网络安全威胁(尤其是网络欺凌)可能激增的担忧。我们的研究旨在探索Twitter上的这些趋势。利用2020年1月1日至9月12日期间126348条推文的数据集,我们研究了27个与网络欺凌相关的关键词,比如“在线欺凌”和“网络欺凌”。认识到传统变化点模型的局限性,我们选择了基于样条平滑的广义加性模型(GAM)。结果很有启发性。从3月中旬开始,网络欺凌事件出现了显著上升,这与全球封锁命令有关。这种趋势在我们所有的目标关键词中都很明显。为了支持我们的发现,我们进行了基于滞后的评估,并将GAM与其他建模方法进行了比较。我们的结论有力地表明,大流行封锁的实施与Twitter上网络欺凌的加剧之间存在密切联系。其含义很明显:全球危机需要加强网络警惕,在这种充满挑战的时期,数字领域的安全变得更加重要。
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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