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dc.contributor.authorNa, Jen_US
dc.contributor.authorZhan, Sen_US
dc.contributor.authorLi, Gen_US
dc.date.accessioned2019-04-30T09:30:39Z
dc.date.issued2018-08-09en_US
dc.identifier.isbn9781538654286en_US
dc.identifier.issn0743-1619en_US
dc.identifier.urihttps://qmro.qmul.ac.uk/xmlui/handle/123456789/57113
dc.description.abstract© 2018 AACC. The control objective of wave energy converters (WECs) is to maximize energy conversion from sea waves and guarantee their safe operation. This can be expressed as a constrained optimal control problem subject to a disturbance input (the incoming wave excitation) for energy maximization. A novel energy maximization control strategy is proposed based on the idea of approximate dynamic programming (ADP), where a critic neural network (NN) is used to approximate the time-dependant optimal cost value (due to the finite-horizon cost function), whose inputs are the current system states and the time-to-go. A recently proposed adaptation based on the parameter estimation error is used to online update the weight of critic NN, where the estimation error convergence can be proved. Hence, the network output, e.g. the costate, is used to compute the optimal feedback control. The proposed WEC control strategy does not need the non-causal information of wave prediction, which makes its implementation more economically viable without significantly reducing energy output. The efficacy of the proposed WEC control approach is demonstrated using numerical simulations.en_US
dc.format.extent98 - 103en_US
dc.titleOnline Optimal Control of Wave Energy Converters via Adaptive Dynamic Programmingen_US
dc.typeConference Proceeding
dc.rights.holder© 2018 AACC
dc.identifier.doi10.23919/ACC.2018.8431491en_US
pubs.notesNot knownen_US
pubs.publication-statusPublisheden_US
pubs.volume2018-Juneen_US
rioxxterms.funderDefault funderen_US
rioxxterms.identifier.projectDefault projecten_US


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