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The Fake News Vaccine: A Content-Agnostic System for Preventing Fake News from Becoming Viral

机译:假新闻疫苗:用于防止假新闻变得病毒的内容 - 不可知论

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While spreading fake news is an old phenomenon, today social media enables misinformation to instantaneously reach millions of people. Content-based approaches to detect fake news, typically based on automatic text checking, are limited. It is indeed difficult to come up with general checking criteria. Moreover, once the criteria are known to an adversary, the checking can be easily bypassed. On the other hand, it is practically impossible for humans to check every news item, let alone preventing them from becoming viral. We present Credulix, the first content-agnostic system to prevent fake news from going viral. Credulix is implemented as a plugin on top of a social media platform and acts as a vaccine. Human fact-checkers review a small number of popular news items, which helps us estimate the inclination of each user to share fake news. Using the resulting information, we automatically estimate the probability that an unchecked news item is fake. We use a Bayesian approach that resembles Condorcet's Theorem to compute this probability. We show how this computation can be performed in an incremental, and hence fast manner.
机译:虽然传播假新闻是一种古老的现象,但今天的社交媒体使错误信息能够瞬间达到数百万人。基于内容的检测假新闻的方法,通常基于自动文本检查是有限的。一般检查标准难以提出。此外,一旦求婚已知标准,就可以容易地绕过检查。另一方面,人类实际上是不可能检查每个新闻项目,更不用说阻止它们成为病毒性。我们提供了第一个内容不可知的系统的Credulix,以防止虚假的消息进行病毒。 Credulix被实施为社交媒体平台顶部的插件,并充当疫苗。人类的事实 - 检查员审查少数流行的新闻项目,帮助我们估计每个用户分享假新闻的倾向。使用所产生的信息,我们自动估计未经检查的新闻项目是假的概率。我们使用贝叶斯方法,类似于Condorcet的定理来计算这种概率。我们展示了如何以增量执行该计算,从而快速的方式。

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