2019
DOI: 10.5687/iscie.32.338
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Adaptive Stepsize Rule for Consensus Optimization by Supervisory Control Architecture

Abstract: We propose an adaptive stepsize rule for multi-agent based consensus optimization, to overcome drawbacks of the conventional diminishing stepsize rules. The proposed stepsize rule is based on an agreement degree of agent-wise gradients. It can archive both of fast approach and convergence at the early and last stages of iteration, respectively. Since the stepsize of each iteration is computed using a part of the global information of agents, a supervisory control architecture is required. We prove that the seq… Show more

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