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dc.contributor.authorFabri, Simon G.-
dc.contributor.authorBugeja, Marvin K.-
dc.date.accessioned2018-04-18T07:15:37Z-
dc.date.available2018-04-18T07:15:37Z-
dc.date.issued2015-
dc.identifier.citationFabri, S. G., & Bugeja, M. K. (2015). Functional adaptive dual control of a class of nonlinear MIMO systems. Transactions of the Institute of Measurement and Control, 37(8), 1009-1025.en_GB
dc.identifier.urihttps://www.um.edu.mt/library/oar//handle/123456789/29298-
dc.description.abstractThis paper proposes three novel neural network controllers for dual adaptive control of a class of functionally uncertain, nonlinear, multiple-input/multiple-output stochastic systems. Both Gaussian radial basis function and sigmoidal multilayer perceptron neural networks are considered for approximation of the unknown dynamic functions. Control and estimation are effected through optimization of a stochastic cost function which elicits the dual effects of caution and probing, resulting in control laws that take into consideration the interactions between estimation and control, leading to improved control performance. The Kalman filter is used for estimation of the weights of the radial basis function network, while the extended and unscented Kalman filter are used for the multilayer perceptron case. The performances of the three schemes are compared and evaluated through extensive Monte Carlo simulations and statistical significance tests.en_GB
dc.language.isoenen_GB
dc.publisherSage Publications Ltd.en_GB
dc.rightsinfo:eu-repo/semantics/restrictedAccessen_GB
dc.subjectMIMO systemsen_GB
dc.subjectNeural networks (Computer science)en_GB
dc.subjectAdaptive control systemsen_GB
dc.subjectStochastic control theoryen_GB
dc.titleFunctional adaptive dual control of a class of nonlinear MIMO systemsen_GB
dc.typearticleen_GB
dc.rights.holderThe copyright of this work belongs to the author(s)/publisher. The rights of this work are as defined by the appropriate Copyright Legislation or as modified by any successive legislation. Users may access this work and can make use of the information contained in accordance with the Copyright Legislation provided that the author must be properly acknowledged. Further distribution or reproduction in any format is prohibited without the prior permission of the copyright holderen_GB
dc.description.reviewedpeer-revieweden_GB
dc.identifier.doi10.1177/0142331214553503-
dc.publication.titleTransactions of the Institute of Measurement and Controlen_GB
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