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20192021
most citedWireless Federated Learning with Local Differential Privacy

25 citations · 53 across the 4 of their papers we have counts for

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6 papers · 1 filter

cs.CR20218 cited

PRECAD: Privacy-Preserving and Robust Federated Learning via Crypto-Aided Differential Privacy

Xiaolan Gu, Ming Li, Li Xiong

Federated Learning (FL) allows multiple participating clients to train machine learning models collaboratively by keeping their datasets local and only exchanging model updates. Ex…

cs.CR202025 cited

Wireless Federated Learning with Local Differential Privacy

Mohamed Seif, Ravi Tandon, Ming Li

In this paper, we study the problem of federated learning (FL) over a wireless channel, modeled by a Gaussian multiple access channel (MAC), subject to local differential privacy (…

cs.CR2020

GhostImage: Remote Perception Attacks against Camera-based Image Classification Systems

Yanmao Man, Ming Li, Ryan Gerdes

In vision-based object classification systems imaging sensors perceive the environment and machine learning is then used to detect and classify objects for decision-making purposes…

cs.CR2020

Local Information Privacy and Its Application to Privacy-Preserving Data Aggregation

Bo Jiang, Ming Li, Ravi Tandon

In this paper, we study local information privacy (LIP), and design LIP based mechanisms for statistical aggregation while protecting users' privacy without relying on a trusted th…

cs.CR201917 cited

PCKV: Locally Differentially Private Correlated Key-Value Data Collection with Optimized Utility

Xiaolan Gu, Ming Li, Yueqiang Cheng +2

Data collection under local differential privacy (LDP) has been mostly studied for homogeneous data. Real-world applications often involve a mixture of different data types such as…

cs.CR20193 cited

Providing Input-Discriminative Protection for Local Differential Privacy

Xiaolan Gu, Ming Li, Li Xiong +1

Local Differential Privacy (LDP) provides provable privacy protection for data collection without the assumption of the trusted data server. In the real-world scenario, different d…