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Unveiling the Truth and Facilitating Change: Towards Agent-based Large-scale Social Movement Simulation

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arxiv 2402.16333 v2 pith:UT5BCCXV submitted 2024-02-26 cs.CY cs.CL

classification cs.CYcs.CL
keywords socialusersagent-basedchangemediamodelsmovementresponse
verification ladder T0 review T1 audit T2 compute T3 formal
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Social media has emerged as a cornerstone of social movements, wielding significant influence in driving societal change. Simulating the response of the public and forecasting the potential impact has become increasingly important. However, existing methods for simulating such phenomena encounter challenges concerning their efficacy and efficiency in capturing the behaviors of social movement participants. In this paper, we introduce a hybrid framework HiSim for social media user simulation, wherein users are categorized into two types. Core users are driven by Large Language Models, while numerous ordinary users are modeled by deductive agent-based models. We further construct a Twitter-like environment to replicate their response dynamics following trigger events. Subsequently, we develop a multi-faceted benchmark SoMoSiMu-Bench for evaluation and conduct comprehensive experiments across real-world datasets. Experimental results demonstrate the effectiveness and flexibility of our method.

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