Chrome Extension for Misinformation Detection

T. Borges
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Abstract

– Misinformation can be stories, hoaxes, or news deliberately created to spread false news and deceive readers. Fake news has always been a part of our lives. However, it has become a topic of interest only recently. Majorly due to the rise of SOCIAL MEDIA. As stated in news articles the Supreme Court condemns these actions and advice a regulatory mechanism. As the use of social media has increased so, has the number of unreliable sources. During covid, there was a variety of misinformation floating around like, applying cow dung can cure covid. In reality, cow dung can't cure covid but can cause black fungal infection. Some other examples include inciting religious sentiments, causing chaos, and harming someone's reputation. Therefore, detecting fake news and stopping it from spreading is necessary. In this model, I have applied TF-IDF vectorizer and Passive Aggressive Classifiers to train my model. After the training and testing have been completed, a local server using Flask has been set up to assist in the development of the second phase of the project, which is Chrome Extension. The Chrome Extension is called Gossip Checker and sends selected data to the model and returns a predicted score of 0 and 1, where 0 means the data is reliable and 1 is not.
错误信息检测Chrome扩展
错误信息可以是故意制造的故事、骗局或新闻,以传播虚假新闻并欺骗读者。假新闻一直是我们生活的一部分。然而,它最近才成为人们感兴趣的话题。这主要是由于社交媒体的兴起。正如新闻文章所述,最高法院谴责这些行为,并建议建立监管机制。随着社交媒体使用的增加,不可靠消息来源的数量也在增加。在covid期间,有各种各样的错误信息四处流传,比如用牛粪可以治愈covid。实际上,牛粪不能治愈covid,但会导致黑色真菌感染。其他一些例子包括煽动宗教情绪,造成混乱,损害某人的声誉。因此,发现假新闻并阻止其传播是必要的。在这个模型中,我使用了TF-IDF矢量器和被动攻击分类器来训练我的模型。在培训和测试完成后,使用Flask的本地服务器已经建立起来,以协助开发项目的第二阶段,即Chrome扩展。Chrome扩展被称为八卦检查器,并发送选定的数据到模型,并返回0和1的预测分数,其中0意味着数据是可靠的,1不是。
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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