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FedZKP: Federated Model Ownership Verification with Zero-knowledge Proof

8 May 2023
Wenyuan Yang
Yuguo Yin
Gongxi Zhu
Hanlin Gu
Lixin Fan
Xiaochun Cao
Qiang Yang
    FedML
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Abstract

Federated learning (FL) allows multiple parties to cooperatively learn a federated model without sharing private data with each other. The need of protecting such federated models from being plagiarized or misused, therefore, motivates us to propose a provable secure model ownership verification scheme using zero-knowledge proof, named FedZKP. It is shown that the FedZKP scheme without disclosing credentials is guaranteed to defeat a variety of existing and potential attacks. Both theoretical analysis and empirical studies demonstrate the security of FedZKP in the sense that the probability for attackers to breach the proposed FedZKP is negligible. Moreover, extensive experimental results confirm the fidelity and robustness of our scheme.

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