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Titlebook: Distributed Optimization in Networked Systems; Algorithms and Appli Qingguo Lü,Xiaofeng Liao,Shanfu Gao Book 2023 The Editor(s) (if applica

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https://doi.org/10.1057/9780230270589cludes Zeno-like behavior, which greatly reduces the interaction cost. ET-DAPDA is investigated on 14-bus and 118-bus systems to evaluate its applicability. Simulation results of convergence rates are further compared with existing techniques to demonstrate the superiority of ET-DAPDA.
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https://doi.org/10.1057/9780230270589tical in applications involving sensitive information, such as military affairs or medical treatment. An important feature of DP-DSSP is that it handles distributed online optimization problems in the context of time-varying unbalanced directed networks. Theoretical analysis shows that DP-DSSP can e
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Projection Algorithms for Distributed Stochastic Optimization,ctation when each constituent function (smooth) is strongly convex if the constant step-size is less than an explicitly calculated upper constraint. Regarding the current distributed methods, the suggested technique not only has a low computation cost in terms of the overall number of local gradient
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Accelerated Algorithms for Distributed Economic Dispatch,orithm, D-DLM, which integrates a distributed gradient tracking method with two momentum terms and non-uniform step-sizes in the update of the Lagrangian multipliers. Next, we give proof that if the maximum step-size and the maximum momentum coefficient are positive and sufficiently small, the D-DLM
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,Primal–Dual Algorithms for Distributed Economic Dispatch,e convex optimization problem only if the step-size does not exceed some upper bound. We also give an explicit analysis of the convergence rate of the proposed optimization algorithm. We perform simulations of economic dispatch problems and demand response problems in power systems to illustrate the
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