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Real time selective harmonic minimization for multilevel inverters using genetic algorithm and artifical neural network angle...

by Faete J Filho, Leon M Tolbert, Burak Ozpineci
Publication Type
Conference Paper
Journal Name
IEEE Transactions on Industry Applications
Publication Date
Page Numbers
895 to 899
Volume
2
Conference Name
2012 IEEE 7th International Power Electroinics and Motion Control Conference
Conference Location
Harbin, China
Conference Date
-

The work developed here proposes a methodology for calculating switching angles for varying DC sources in a multilevel cascaded H-bridges converter. In this approach the required fundamental is achieved, the lower harmonics are minimized, and the system can be implemented in real time with low memory requirements. Genetic algorithm (GA) is the stochastic search method to find the solution for the set of equations where the input voltages are the known variables and the switching angles are the unknown variables. With the dataset generated by GA, an artificial neural network (ANN) is trained to store the solutions without excessive memory storage requirements. This trained ANN then senses the voltage of each cell and produces the switching angles in order to regulate the fundamental at 120 V and eliminate or minimize the low order harmonics while operating in real time.