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Mar, 2024
联邦学习中的数据重构攻击防御:一种信息论方法
Defending Against Data Reconstruction Attacks in Federated Learning: An Information Theory Approach
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Qi Tan, Qi Li, Yi Zhao, Zhuotao Liu, Xiaobing Guo...
TL;DR
在分布式学习中,我们提出了一种通过限制传输信息量并应用数据空间操作的渠道模型,以提高数据重构攻击下的隐私保护,验证了方法的有效性。
Abstract
federated learning
(FL) trains a black-box and high-dimensional model among different clients by exchanging parameters instead of direct data sharing, which mitigates the
privacy
leak incurred by machine learning
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