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Does Localization Inform Unlearning? A Rigorous Examination of Local Parameter Attribution for Knowledge Unlearning in Language Modelsopen access

Authors
Lee, HwiyeongHwang, UijiLim, HyelimKim, Taeuk
Issue Date
Nov-2025
Publisher
Association for Computational Linguistics
Citation
EMNLP 2025 - 2025 Conference on Empirical Methods in Natural Language Processing, Proceedings of the Conference, pp 21857 - 21869
Pages
13
Indexed
SCOPUS
Journal Title
EMNLP 2025 - 2025 Conference on Empirical Methods in Natural Language Processing, Proceedings of the Conference
Start Page
21857
End Page
21869
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/213282
DOI
10.18653/v1/2025.emnlp-main.1109
Abstract
Large language models often retain unintended content, prompting growing interest in knowledge unlearning.Recent approaches emphasize localized unlearning, restricting parameter updates to specific regions in an effort to remove target knowledge while preserving unrelated general knowledge. However, their effectiveness remains uncertain due to the lack of robust and thorough evaluation of the trade-off between the competing goals of unlearning.In this paper, we begin by revisiting existing localized unlearning approaches. We then conduct controlled experiments to rigorously evaluate whether local parameter updates causally contribute to unlearning.Our findings reveal that the set of parameters that must be modified for effective unlearning is not strictly determined, challenging the core assumption of localized unlearning that parameter locality is inherently indicative of effective knowledge removal.
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