Title :
Exponential synchronization of master-slave neural networks with time-delays
Author :
Karimi, Hamid Reza ; Dashkovskiy, Sergey
Author_Institution :
Fac. of Technol. & Sci., Univ. of Agder, Grimstad, Norway
Abstract :
This paper establishes an exponential H∞ synchronization method for a class of master and slave neural networks (MSNNs) with mixed time-delays, where the delays comprise different neutral, discrete and distributed time-delays and the class covers the Lipschitz-type nonlinearity case. By introducing a novel discretized Lyapunov-Krasovskii functional in order to minimize the conservatism in the stability problem of the system and also using some free weighting matrices, new delay-dependent sufficient conditions are derived for designing a delayed state-feedback control as a synchronization law in terms of linear matrix inequalities (LMIs). The controller guarantees the exponential H∞ synchronization of the two coupled MSNNs regardless of their initial states. Detailed comparisons with different number of segments are made and numerical simulations are carried out to demonstrate the effectiveness of the established synchronization laws.
Keywords :
H∞ control; Lyapunov methods; control nonlinearities; control system synthesis; delays; distributed control; functional equations; linear matrix inequalities; neurocontrollers; stability; state feedback; synchronisation; LMI; Lipschitz-type nonlinearity; MSNN; conservatism minimization; delay-dependent sufficient conditions; delayed state-feedback control design; discrete time-delay; discretized Lyapunov-Krasovskii functional; distributed time-delay; exponential H∞ synchronization method; free weighting matrices; linear matrix inequalities; master-slave neural networks; mixed time-delays; neutral time-delay; synchronization law; system stability problem; Decision support systems; Europe; Master-slave; Neural networks; Synchronization;
Conference_Titel :
Control Conference (ECC), 2009 European
Conference_Location :
Budapest
Print_ISBN :
978-3-9524173-9-3