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Defensive Modeling of Fake News Through Online Social Networks

机译:通过在线社交网络假设假新闻的防御性建模

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Online social networks (OSNs) have become an integral mode of communication among people and even nonhuman scenarios can also be integrated into OSNs. The evergrowing rise in the popularity of OSNs can be attributed to the rapid growth of Internet technology. OSN becomes the easiest way to broadcast media (news/content) over the Internet. In the wake of emerging technologies, there is dire need to develop methodologies, which can minimize the spread of fake messages or rumors that can harm society in any manner. In this article, a model is proposed to investigate the propagation of such messages currently coined as fake news. The proposed model describes how misinformation gets disseminated among groups with the influence of different misinformation refuting measures. With the onset of the novel coronavirus-19 pandemic, dubbed COVID-19, the propagation of fake news related to the pandemic is higher than ever. In this article, we aim to develop a model that will be able to detect and eliminate fake news from OSNs and help ease some OSN users stress regarding the pandemic. A system of differential equations is used to formulate the model. Its stability and equilibrium are also thoroughly analyzed. The basic reproduction number (R-0) is obtained which is a significant parameter for the analysis of message spreading in the OSNs. If the value of R-0 is less than one (R-0 < 1), then fake message spreading in the online network will not be prominent, otherwise if R-0 > 1 the rumor will persist in the OSN. Realworld trends of misinformation spreading in OSNs are discussed. In addition, the model discusses the controlling mechanism for untrusted message propagation. The proposed model has also been validated through extensive simulation and experimentation.
机译:在线社交网络(OSNS)已成为人们之间的整体通信模式,甚至是非人类方案也可以集成到OSN中。奥斯人普及的常见上升可归因于互联网技术的快速增长。 OSN成为在互联网上广播媒体(新闻/内容)的最简单方法。在新兴的技术之后,有急需开发方法,这可以最大限度地减少可以以任何方式损害社会的假消息或谣言。在本文中,提出了一种模型来调查当前被创造为假新闻的消息的传播。拟议的模型描述了在不同错误形式矫正措施的影响下群体之间的信息如何传播。随着新型冠状病毒-19大流行,被称为Covid-19的发作,与大流行相关的假新闻的传播高于以往任何时候都高。在本文中,我们的目标是开发一个模型,该模型将能够从OSNS中检测和消除假新闻,并有助于缓解某些OSN用户对大流行的压力。使用差分方程系统用于制定模型。它的稳定性和平衡也被彻底分析。获得基本再现号码(R-0),这是分析OSN中的消息扩展的重要参数。如果R-0的值小于一个(R-0 <1),那么在线网络中的假消息传播将不会突出,否则如果R-0> 1谣言将持续在OSN中。讨论了OSNS中误导误导的现实世界趋势。此外,该模型讨论了不受信任的消息传播的控制机制。通过广泛的模拟和实验,拟议的模型也得到了验证。

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