Stanceosaurus 2.0: Classifying Stance Towards Russian and Spanish Misinformation
February 06, 2024 ยท Declared Dead ยท ๐ WNUT
"No code URL or promise found in abstract"
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Authors
Anton Lavrouk, Ian Ligon, Tarek Naous, Jonathan Zheng, Alan Ritter, Wei Xu
arXiv ID
2402.03642
Category
cs.CL: Computation & Language
Cross-listed
cs.CY,
cs.LG,
cs.SI
Citations
1
Venue
WNUT
Last Checked
5 months ago
Abstract
The Stanceosaurus corpus (Zheng et al., 2022) was designed to provide high-quality, annotated, 5-way stance data extracted from Twitter, suitable for analyzing cross-cultural and cross-lingual misinformation. In the Stanceosaurus 2.0 iteration, we extend this framework to encompass Russian and Spanish. The former is of current significance due to prevalent misinformation amid escalating tensions with the West and the violent incursion into Ukraine. The latter, meanwhile, represents an enormous community that has been largely overlooked on major social media platforms. By incorporating an additional 3,874 Spanish and Russian tweets over 41 misinformation claims, our objective is to support research focused on these issues. To demonstrate the value of this data, we employed zero-shot cross-lingual transfer on multilingual BERT, yielding results on par with the initial Stanceosaurus study with a macro F1 score of 43 for both languages. This underlines the viability of stance classification as an effective tool for identifying multicultural misinformation.
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