Papers › Deep Leakage from Gradients

Deep Leakage from Gradients

21 Jun 2019NeurIPS 2019 12arXiv:1906.08935archive 2025-07-28

Ligeng Zhu, Zhijian Liu, Song Han

Exchanging gradients is a widely used method in modern multi-node machine learning system (e.g., distributed training, collaborative learning). For a long time, people believed that gradients are safe to share: i.e., the training data will not be leaked by gradient exchange. However, we show that it is possible to obtain the private training data from the publicly shared gradients. We name this leakage as Deep Leakage from Gradient and empirically validate the effectiveness on both computer vision and natural language processing tasks. Experimental results show that our attack is much stronger than previous approaches: the recovery is pixel-wise accurate for images and token-wise matching for texts. We want to raise people's awareness to rethink the gradient's safety. Finally, we discuss several possible strategies to prevent such deep leakage. The most effective defense method is gradient pruning.

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MiscCoding/AddGausianNoise mentioned on GitHubpytorchMIT report
Mishuni/ViT_Inversion mentioned on GitHubpytorchnot reachable when probed 2026-09-17 — repositories for recent papers often appear after camera-ready report
mit-han-lab/deep-leakage-from-gradients mentioned on GitHubpytorchMIT report
mit-han-lab/dlg mentioned on GitHubpytorchMIT report
ytingma/ppidsg mentioned on GitHubpytorch report

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cross_entropy_for_onehot mit-han-lab/dlg/utils.py community (archive-listed) ran · our draft was wrong fingerprinted MIT (permissive) · e4df01238c9e5ba5 · report
cross_entropy_onehot FaisalAhmed0/Deep-Leakage-from-Gradients/src/utils.py community (archive-listed) ran · our draft was wrong no licence file found · pointer only · dad4aff9c124d59f · report
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label_to_onehot mit-han-lab/dlg/utils.py community (archive-listed) unverified MIT (permissive) · 4535c79f8dfff634 · report

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