A Structured Clustering Approach for Inducing Media Narratives

April 11, 2026 ยท Grace Period ยท ๐Ÿ› ACL 2026

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Authors Rohan Das, Advait Deshmukh, Alexandria Leto, Zohar Naaman, I-Ta Lee, Maria Leonor Pacheco arXiv ID 2604.10368 Category cs.CL: Computation & Language Citations 0 Venue ACL 2026
Abstract
Media narratives wield tremendous power in shaping public opinion, yet computational approaches struggle to capture the nuanced storytelling structures that communication theory emphasizes as central to how meaning is constructed. Existing approaches either miss subtle narrative patterns through coarse-grained analysis or require domain-specific taxonomies that limit scalability. To bridge this gap, we present a framework for inducing rich narrative schemas by jointly modeling events and characters via structured clustering. Our approach produces explainable narrative schemas that align with established framing theory while scaling to large corpora without exhaustive manual annotation.
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