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Approximate Machine Unlearning through Manifold Representation Forgetting Guided by Self Mode Connectivity

arXiv cs.LG · 2026-05-25 Cached

This paper proposes ManiF-SMC, a method for approximate machine unlearning that operates entirely in the representation space by pushing erased samples away from their original learned manifold representation toward their nearest semantic neighbors in the retained data, using a margin-based triplet loss guided by a self-mode-connectivity module for adaptive margins.

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