Resilient to Byzantine Attacks Finite-Sum Optimization Over Networks

Published: May 1, 2020
Abstract
This contribution deals with distributed finite-sum optimization for learning over networks in the presence of malicious Byzantine attacks. To cope with such attacks, resilient approaches so far combine stochastic gradient descent (SGD) with different robust aggregation rules. However, the sizeable SGD-induced gradient noise makes it challenging to distinguish malicious messages sent by the Byzantine attackers from noisy stochastic gradients...
Paper Details
Title
Resilient to Byzantine Attacks Finite-Sum Optimization Over Networks
Published Date
May 1, 2020
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