Hypernetworks for Perspectivist Adaptation
Publication date
2025-11-01
Editors
Abercrombie, Gavin
Basile, Valerio
Frenda, Simona
Tonelli, Sara
Dudy, Shiran
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Supervisors
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Part of book
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Abstract
The task of perspective-aware classification introduces a bottleneck in terms of parametric efficiency that did not get enough recognition in existing studies. In this article, we aim to address this issue by applying an existing architecture, the hypernetwork+adapters combination, to perspectivist classification. Ultimately, we arrive at a solution that can compete with specialized models in adopting user perspectives on hate speech and toxicity detection, while also making use of considerably fewer parameters. Our solution is architecture-agnostic and can be applied to a wide range of base models out of the box.
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Citation
Ignatev, D, Paperno, D & Poesio, M 2025, Hypernetworks for Perspectivist Adaptation. in G Abercrombie, V Basile, S Frenda, S Tonelli & S Dudy (eds), Proceedings of the The 4th Workshop on Perspectivist Approaches to NLP. Association for Computational Linguistics (ACL), Suzhou, China, pp. 111-122. https://doi.org/10.18653/v1/2025.nlperspectives-1.10