Using Artificial Intelligence Systems in News Verification: An Application on X

Nazmi Ekin Vural, Sefer Kalaman
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Abstract

The aim of this study is to analyse the relationship between the interaction rates and the number of followers of independent news accounts broadcasting on social network platforms and the types of fake news they publish and the frequency of publishing fake news. In the study, fake news was categorised using qualitative content analysis method. In addition to this, artificial intelligence was used to check the accuracy of news content shared on social networks and to distinguish misleading information. To obtain the data, Chat GPT was utilised and an artificial intelligence powered chatbot was developed with the help of algorithms prepared by the researchers to determine the accuracy of the news. The population of the study consists of the accounts practicing social media journalism on the social networking platform X in Türkiye. The sample of the study consists of 6 accounts with the highest interaction selected by purposive sampling method among the accounts that engage in social media journalism on this platform and have the highest interaction. According to the results obtained from the research, a large proportion of the news content shared by accounts practicing social media journalism on the X platform in Türkiye consists of unverifiable news content. In the category of unverifiable news, news is mostly made in the category of “Fabricated” content.
在新闻验证中使用人工智能系统:X 上的应用
本研究旨在分析在社交网络平台上播放的独立新闻账户的互动率和粉丝数量与其发布的假新闻类型和发布假新闻频率之间的关系。研究采用定性内容分析法对假新闻进行分类。此外,还使用人工智能检查社交网络上分享的新闻内容的准确性,并区分误导性信息。为了获取数据,研究人员利用聊天 GPT 和人工智能驱动的聊天机器人,在研究人员编写的算法帮助下确定新闻的准确性。研究对象包括在土耳其社交网络平台 X 上从事社交媒体新闻报道的账户。研究样本包括在该平台上从事社交媒体新闻报道且互动最高的 6 个账户,采用目的性抽样方法从这些账户中选出。研究结果表明,在土耳其 X 平台上从事社交媒体新闻报道的账户所分享的新闻内容中,很大一部分是无法核实的新闻内容。在无法核实的新闻类别中,大部分是 "捏造 "类新闻内容。
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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