Secure Byzantine-Robust Machine Learning

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Authors Lie He, Sai Praneeth Karimireddy, Martin Jaggi arXiv ID 2006.04747 Category cs.LG: Machine Learning Cross-listed cs.CR, stat.ML Citations 66 Venue arXiv.org Last Checked 5 months ago
Abstract
Increasingly machine learning systems are being deployed to edge servers and devices (e.g. mobile phones) and trained in a collaborative manner. Such distributed/federated/decentralized training raises a number of concerns about the robustness, privacy, and security of the procedure. While extensive work has been done in tackling with robustness, privacy, or security individually, their combination has rarely been studied. In this paper, we propose a secure two-server protocol that offers both input privacy and Byzantine-robustness. In addition, this protocol is communication-efficient, fault-tolerant and enjoys local differential privacy.
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