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A distributed optimization-based approach for hierarchical model predictive control of large-scale systems with coupled dynamics and constraints

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arxiv 1109.1214 v2 pith:KWCCZLWC submitted 2011-09-06 math.OC cs.MAcs.SYeess.SY

A distributed optimization-based approach for hierarchical model predictive control of large-scale systems with coupled dynamics and constraints

classification math.OC cs.MAcs.SYeess.SY
keywords approachprimalconstraintscontroldistributeddualdynamicshierarchical
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We present a hierarchical model predictive control approach for large-scale systems based on dual decomposition. The proposed scheme allows coupling in both dynamics and constraints between the subsystems and generates a primal feasible solution within a finite number of iterations, using primal averaging and a constraint tightening approach. The primal update is performed in a distributed way and does not require exact solutions, while the dual problem uses an approximate subgradient method. Stability of the scheme is established using bounded suboptimality.

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