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arXiv · 2606.22220

MultiMem: Measuring and Mitigating Memorization in Multi-Modal Contrastive Learning

Abstract

Memorization in machine learning models enables high performance on rare in-distribution samples by capturing their atypical patterns. However, it also causes harmful retention of noise and outliers, degrading generalization. While memorization has been extensively studied in both supervised and self-supervised learning in the vision domain, it remains unexplored in multi-modal contrastive learning. We address this gap by introducing MultiMem, the first metric designed to quantify memorization in multi-modal contrastive learning. Through our systematic analysis, we demonstrate that cross-modal semantic misalignment has the strongest influence on memorization, with text being the dominant modality driving memorization, followed by video, image, and audio. We show that targeted augmentations applied across all modalities effectively reduce memorization as measured by our MultiMem metric and improve model performance. Overall, this work establishes the first framework for measuring and mitigating memorization in multi-modal contrastive learning, preventing harmful data retention and contributing to higher-performing models.

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BibTeXRIS

Wenhao Wang, Franziska Boenisch, Michael Backes, Adam Dziedzic. 2026-06-20. MultiMem: Measuring and Mitigating Memorization in Multi-Modal Contrastive Learning. https://arxiv.org/abs/2606.22220

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