Distributed constrained optimization and consensus in uncertain networks via proximal minimization

We provide a unifying framework for distributed convex optimization over time-varying networks, in the presence of constraints and uncertainty, features that are typically treated separately in the literature. We adopt a proximal minimization perspective and show that this set-up allows us to bypass...

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Detalhes bibliográficos
Main Authors: Margellos, K, Falsone, A, Garatti, S, Prandini, M
Formato: Journal article
Publicado em: IEEE 2017