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Mengda Yang

3 papers

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papers

Publications (3)

cs.CR2024

Is Difficulty Calibration All We Need? Towards More Practical Membership Inference Attacks

Yu He, Boheng Li, Yao Wang +4

The vulnerability of machine learning models to Membership Inference Attacks (MIAs) has garnered considerable attention in recent years. These attacks determine whether a data samp…

cs.CR2025

From Head to Tail: Efficient Black-box Model Inversion Attack via Long-tailed Learning

Ziang Li, Hongguang Zhang, Juan Wang +6

Model Inversion Attacks (MIAs) aim to reconstruct private training data from models, leading to privacy leakage, particularly in facial recognition systems. Although many studies h…

cs.CR2024

A Stealthy Wrongdoer: Feature-Oriented Reconstruction Attack against Split Learning

Xiaoyang Xu, Mengda Yang, Wenzhe Yi +5

Split Learning (SL) is a distributed learning framework renowned for its privacy-preserving features and minimal computational requirements. Previous research consistently highligh…

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