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Exploring Privacy and Fairness Risks in Sharing Diffusion Models: An Adversarial Perspective

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arxiv 2402.18607 v3 pith:S7PTQTZ3 submitted 2024-02-28 cs.LG cs.AIcs.CR

classification cs.LGcs.AIcs.CR
keywords diffusionmodelsdataprivacysharingdistributionfairnessmodel
verification ladder T0 review T1 audit T2 compute T3 formal
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Diffusion models have recently gained significant attention in both academia and industry due to their impressive generative performance in terms of both sampling quality and distribution coverage. Accordingly, proposals are made for sharing pre-trained diffusion models across different organizations, as a way of improving data utilization while enhancing privacy protection by avoiding sharing private data directly. However, the potential risks associated with such an approach have not been comprehensively examined. In this paper, we take an adversarial perspective to investigate the potential privacy and fairness risks associated with the sharing of diffusion models. Specifically, we investigate the circumstances in which one party (the sharer) trains a diffusion model using private data and provides another party (the receiver) black-box access to the pre-trained model for downstream tasks. We demonstrate that the sharer can execute fairness poisoning attacks to undermine the receiver's downstream models by manipulating the training data distribution of the diffusion model. Meanwhile, the receiver can perform property inference attacks to reveal the distribution of sensitive features in the sharer's dataset. Our experiments conducted on real-world datasets demonstrate remarkable attack performance on different types of diffusion models, which highlights the critical importance of robust data auditing and privacy protection protocols in pertinent applications.

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Cited by 1 Pith paper

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  1. Frequency-Calibrated Membership Inference Attacks on Medical Image Diffusion Models

    cs.CV 2025-06 conditional novelty 5.0 of 10

    A frequency-band-masked reconstruction error, FCRE, improves membership inference on medical image diffusion models.

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