Automated Identification of Competing Narratives in Political Discourse on Social Media

📅 2026-09-10
📈 Citations: 0
Influential: 0
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🤖 AI Summary
本文提出一种无监督框架,通过自然语言处理技术识别和分析社交媒体上德国政治人物推文中的竞争性叙事,以理解现代政治交流动态。
📝 Abstract
Social media platforms have become central to shaping political discourse, serving as arenas where narratives form and evolve, influencing public opinion. Identifying and analyzing these narratives, particularly when they compete across different political ideologies, is crucial for understanding the dynamics of modern political communication. This paper presents an unsupervised framework for identifying and characterizing competing narratives in political discourse on social media, focusing on German politicians' tweets. The framework employs a multi-stage pipeline that integrates natural language processing techniques such as topic modeling, event detection, and event linking. By forming data into coherent stories and uncovering the distinct perspectives of user communities, the system is able to detect the key competing narratives, highlighting the divergent framings and conflicts surrounding trending political topics. Two case studies on polarizing political issues demonstrate the efficacy of the methodology, showcasing its ability to uncover and analyze divergent viewpoints. The findings contribute to the broader understanding of how narratives propagate within the digital public sphere and offer insights for policymakers, social media platforms, and researchers interested in monitoring political discourse.
Problem

Research questions and friction points this paper is trying to address.

Competing Narratives
Political Discourse
Social Media
Innovation

Methods, ideas, or system contributions that make the work stand out.

unsupervised framework
competing narratives
natural language processing
political discourse
social media
S
Sergej Wildemann
L3S Research Center, Leibniz Universität Hannover, Hannover, Germany
E
Erick Elejalde
L3S Research Center, Leibniz Universität Hannover, Hannover, Germany