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The triple‐filter bubble: Using agent‐based modelling to test a meta‐theoretical framework for the emergence of filter bubbles and echo chambers

机译:三重过滤器气泡:使用基于代理的建模测试过滤器气泡和回声腔出现的元理论框架

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摘要

Filter bubbles and echo chambers have both been linked recently by commentators to rapid societal changes such as Brexit and the polarization of the US American society in the course of Donald Trump's election campaign. We hypothesize that information filtering processes take place on the individual, the social, and the technological levels (triple‐filter‐bubble framework). We constructed an agent‐based modelling (ABM) and analysed twelve different information filtering scenarios to answer the question under which circumstances social media and recommender algorithms contribute to fragmentation of modern society into distinct echo chambers. Simulations show that, even without any social or technological filters, echo chambers emerge as a consequence of cognitive mechanisms, such as confirmation bias, under conditions of central information propagation through channels reaching a large part of the population. When social and technological filtering mechanisms are added to the model, polarization of society into even more distinct and less interconnected echo chambers is observed. Merits and limits of the theoretical framework, and more generally of studying complex social phenomena using ABM, are discussed. Directions for future research such as ways of comparing our simulations with actual empirical data and possible measures against societal fragmentation on the three different levels are suggested.
机译:评论家最近将过滤器气泡和回声室都与快速的社会变化联系在一起,例如英国脱欧和唐纳德·特朗普竞选期间美国社会的两极分化。我们假设信息过滤过程发生在个人,社会和技术层面(三重过滤器泡沫框架)。我们构建了一个基于代理的建模(ABM),并分析了十二种不同的信息过滤方案,以回答以下问题:在这种情况下,社交媒体和推荐算法会导致现代社会分裂成不同的回声室。模拟表明,即使在没有任何社会或技术过滤条件的情况下,在中央信息通过到达大部分人口的渠道传播的条件下,回声室还是由于认知机制(如确认偏差)而出现的。当将社会和技术过滤机制添加到模型中时,会观察到社会分化为更加独特和相互联系较少的回声室。讨论了理论框架的优缺点,更广泛地讲是使用ABM研究复杂的社会现象。建议了未来研究的方向,例如将我们的模拟与实际经验数据进行比较的方式以及在三个不同级别上针对社会分裂的可能措施。

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