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DESIGN ANALYSIS AND SIMULATION OF NEURAL NETWORK BASED CONTROLLERS FOR NONLINEAR SYSTEMS

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dc.contributor.author Panwar, Vikas
dc.date.accessioned 2014-12-08T08:00:17Z
dc.date.available 2014-12-08T08:00:17Z
dc.date.issued 2005
dc.identifier Ph.D en_US
dc.identifier.uri http://hdl.handle.net/123456789/13648
dc.guide Sukavanam, N.
dc.description.abstract This thesis is concerned with design, analysis and simulation, of artificial neural network based controllers for certain problems involving nonlinear control systems. Consider the following two types of nonlinear systems namely (i) the internal control systems and (ii) the boundary control systems. 1 Internal Control Systems *(t) = f(x(t),u(t),t) x(0) = xo where x(t) = d d t) , x(t) E R11 and u(t) E Rm are called state variable and control variable respectively, f is a nonlinear function. Here the control function u appears in the dynamical model itself. 2 Boundary Control Systems x(t)=f(x) in Q = §1 x (0,T) x(0)=x0 in S2 (2) x=gx~o onE=Fx(0,T) Here the control function g appears in the boundary condition. In this system S2 is a bounded domain (nonempty, open and connected) in R with a smooth boundary F. Fo is nonempty and an open subset of the boundary F. g represents boundary control function, X; is the characteristic function of Eo = F0 x (0,T) . en_US
dc.language.iso en en_US
dc.subject NEURAL NETWORK en_US
dc.subject CONTROLLERS en_US
dc.subject NONLINEAR SYSTEM en_US
dc.subject MATHEMATICS en_US
dc.title DESIGN ANALYSIS AND SIMULATION OF NEURAL NETWORK BASED CONTROLLERS FOR NONLINEAR SYSTEMS en_US
dc.type Doctoral Thesis en_US
dc.accession.number G13018 en_US


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