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Correlation-Guided Fast Machine Unlearning via Hessian Analysis

arXiv · AI, language, vision and robotics · article · Sep 11, 2026 · UTC

The increasing adoption of machine learning in network and distributed security systems has created an urgent need for mechanisms that can selectively and efficiently remove the influence of specific training data to eliminate compromised or adversarial data points from production models. Privacy regulations such as GDPR's \emph{right to be forgotten} also pose similar requirements. However, existing approximate unlearning techniques remain computationally prohibitive for deployment in real-world security systems, as they require repeated expensive Hessian-inverse-vector computations for each

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Evidence & attribution

First collected: 2026-09-20T18:22:04.777Z. This is not the publication date.