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Agent-Based Simulations of Online Political Discussions: A Case Study on Elections in Germany

Agent-Based Simulations of Online Political Discussions: A Case Study on Elections in Germany

来源:Arxiv_logoArxiv
英文摘要

User engagement on social media platforms is influenced by historical context, time constraints, and reward-driven interactions. This study presents an agent-based simulation approach that models user interactions, considering past conversation history, motivation, and resource constraints. Utilizing German Twitter data on political discourse, we fine-tune AI models to generate posts and replies, incorporating sentiment analysis, irony detection, and offensiveness classification. The simulation employs a myopic best-response model to govern agent behavior, accounting for decision-making based on expected rewards. Our results highlight the impact of historical context on AI-generated responses and demonstrate how engagement evolves under varying constraints.

Abdul Sittar、Simon Münker、Fabio Sartori、Andreas Reitenbach、Achim Rettinger、Michael M?s、Alenka Gu?ek、Marko Grobelnik

计算技术、计算机技术

Abdul Sittar,Simon Münker,Fabio Sartori,Andreas Reitenbach,Achim Rettinger,Michael M?s,Alenka Gu?ek,Marko Grobelnik.Agent-Based Simulations of Online Political Discussions: A Case Study on Elections in Germany[EB/OL].(2025-03-31)[2025-05-06].https://arxiv.org/abs/2503.24199.点此复制

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