2023
DOI: 10.1109/ojcsys.2023.3259228
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Distributed Data-Driven Control of Network Systems

Abstract: Imperfect models lead to imperfect controllers and deriving accurate models from first principles or system identification is especially challenging in networked systems. Instead, data can be used to directly compute controllers, without requiring any system identification or modeling. In this paper we propose a strategy to directly learn control actions when data from past system trajectories is distributed among multiple agents in a network. The approach we develop provably converges to a suboptimal solution… Show more

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Cited by 3 publications
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References 47 publications
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