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LLM Unlearning via Neural Activation Redirection

About

The ability to selectively remove knowledge from LLMs is highly desirable. However, existing methods often struggle with balancing unlearning efficacy and retain model utility, and lack controllability at inference time to emulate base model behavior as if it had never seen the unlearned data. In this paper, we propose LUNAR, a novel unlearning method grounded in the Linear Representation Hypothesis and operates by redirecting the representations of unlearned data to activation regions that expresses its inability to answer. We show that contrastive features are not a prerequisite for effective activation redirection, and LUNAR achieves state-of-the-art unlearning performance and superior controllability. Specifically, LUNAR achieves between 2.9x and 11.7x improvement in the combined unlearning efficacy and model utility score (Deviation Score) across various base models and generates coherent, contextually appropriate responses post-unlearning. Moreover, LUNAR effectively reduces parameter updates to a single down-projection matrix, a novel design that significantly enhances efficiency by 20x and robustness. Finally, we demonstrate that LUNAR is robust to white-box adversarial attacks and versatile in real-world scenarios, including handling sequential unlearning requests.

William F. Shen, Xinchi Qiu, Meghdad Kurmanji, Alex Iacob, Lorenzo Sani, Yihong Chen, Nicola Cancedda, Nicholas D. Lane• 2025

Related benchmarks

TaskDatasetResultRank
Machine UnlearningTOFU
Aggregation Metric28
17
Machine UnlearningWMDP-cyber forget-set
BF16 Performance50.1
16
Machine UnlearningMUSE forget-set
Performance (BF16)0.187
16
Knowledge RetentionWMDP-chem (retain)
Rt (Knowledge Retention)51.8
16
Knowledge RetentionWMDP cyber (retain)
Rt49.8
16
Machine UnlearningWMDP-bio (forget-set)
BF16 Score0.658
16
Machine UnlearningWMDP chem forget-set
BF16 Score52.1
16
Structural ErasureWMDP bio
CAD0.039
16
Structural ErasureWMDP cyber
CAD0.027
16
Knowledge RetentionWMDP bio (retain)
Rt65.5
16
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