TATA: Stance Detection via Topic-Agnostic and Topic-Aware Embeddings
Hans W. A. Hanley, Zakir Durumeric
Abstract
Stance detection is important for understanding different attitudes and beliefs on the Internet. However, given that a passage's stance toward a given topic is often highly dependent on that topic, building a stance detection model that generalizes to unseen topics is difficult. In this work, we propose using contrastive learning as well as an unlabeled dataset of news articles that cover a variety of different topics to train topic-agnostic/TAG and topic-aware/TAW embeddings for use in downstream stance detection. Combining these embeddings in our full TATA model, we achieve state-of-the-art performance across several public stance detection datasets (0.771 F 1 -score on the Zero-shot VAST dataset). We release our code and data at https://github.com/hanshanley/tata .
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Cited by top-tier papers4
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- Modeling Human-Like Cognition for Stance Detection: Integrating Intuitive Judgment and Analytical ReasoningZhaodan Zhang, Jin Zhang, Jiafeng Guo, Xueqi ChengACL 2026
- MPRF: Interpretable Stance Detection through Multi-Path Reasoning FrameworkZhaodan Zhang, Jin Zhang, Hui Xu, Jiafeng Guo et al.EMNLP 2025
- Tracking the Takes and Trajectories of English-Language News Narratives across Trustworthy and Worrisome WebsitesHans W. A. Hanley, Emily Okabe, Zakir DurumericUSENIX Security 2025
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