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4

Hijack Vertical Federated Learning Models As One Party

1 December 2022
Pengyu Qiu
Xuhong Zhang
Shouling Ji
Changjiang Li
Yuwen Pu
Xing Yang
Ting Wang
    FedML
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Abstract

Vertical federated learning (VFL) is an emerging paradigm that enables collaborators to build machine learning models together in a distributed fashion. In general, these parties have a group of users in common but own different features. Existing VFL frameworks use cryptographic techniques to provide data privacy and security guarantees, leading to a line of works studying computing efficiency and fast implementation. However, the security of VFL's model remains underexplored.

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