Genetic Algorithms-based Identification
نویسنده
چکیده
We study genetic algorithms (GAs)-based identiica-tion for nonlinear systems in the presence of unknown driving noise, using both feedforward multilayer neu-ral network models and radial basis function network models. Under perfect state measurements, we rst show that a standard GA-based estimation scheme, in its full potential, even though leading to a satisfactory model for state estimation, may generally not yield a suuciently accurate system model, i.e. the parameter estimates do not secure a good approxi-mant for the system nonlinearity. We then introduce a new approach that utilizes the robust identiication scheme of 1], which leads to a good approximation of the nonlinearity in the system. Several numerical and simulation studies included in the paper demonstrate the eeective use of GAs in this framework, in searching for the parameter values that lead to the \best" nite-dimensional approximation of the nonlinearities in the system dynamics.
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