A Survey on Event-based News Narrative Extraction
February 16, 2023 ยท The Cartographer ยท ๐ ACM Computing Surveys
"No code URL or promise found in abstract"
"Title-pattern auto-detect: A Survey on Event-based News Narrative Extraction"
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Authors
Brian Keith Norambuena, Tanushree Mitra, Chris North
arXiv ID
2302.08351
Category
cs.CL: Computation & Language
Cross-listed
cs.IR
Citations
35
Venue
ACM Computing Surveys
Last Checked
2 days ago
Abstract
Narratives are fundamental to our understanding of the world, providing us with a natural structure for knowledge representation over time. Computational narrative extraction is a subfield of artificial intelligence that makes heavy use of information retrieval and natural language processing techniques. Despite the importance of computational narrative extraction, relatively little scholarly work exists on synthesizing previous research and strategizing future research in the area. In particular, this article focuses on extracting news narratives from an event-centric perspective. Extracting narratives from news data has multiple applications in understanding the evolving information landscape. This survey presents an extensive study of research in the area of event-based news narrative extraction. In particular, we screened over 900 articles that yielded 54 relevant articles. These articles are synthesized and organized by representation model, extraction criteria, and evaluation approaches. Based on the reviewed studies, we identify recent trends, open challenges, and potential research lines.
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