DocumentCode :
1583674
Title :
A novel timing control method for neural network based digitally controlled DC-DC converter
Author :
Maruta, Hidenori ; Motomura, Masato ; Kurokawa, Fujio
Author_Institution :
Grad. Sch. of Eng., Nagasaki Univ., Nagasaki, Japan
fYear :
2013
Firstpage :
1
Lastpage :
8
Abstract :
Generally, the training based control method for dc-dc converters has a problem due to the fact that there is a difference of behavior between a controlled system before the training and one after the training. Therefore, when it is adopted to improve the transient response of dc-dc converter, it is needed to consider the bad effect of the training since the training term does not take its own effect to the transient response into account. Especially, the suitable timing and duration of the training based control term is affected since the behavior of the system is changed by its own effect. In this paper, we study a timing control method for a neural network based digital control method to improve the transient response of dc-dc converters. The neural network control is a suitable training based method since it can be a time series predictor to compensate the transient response. In our presented method, the standard three-layer neural network is adopted to improve the transient response converters by reference modification of a conventional PID control. To address the problem about the timing control, we present a method to obtain the suitable timing and duration effect of the neural network control term with simple criteria. This timing control works to avoid the bad effect of the neural network control term and obtain improved results. Experimental results show that our method can contribute to the improvement of transient response effectively.
Keywords :
DC-DC power convertors; digital control; neurocontrollers; three-term control; transient response; conventional PID control; digitally-controlled DC-DC converter; neural network-based digital control method; reference modification; standard three-layer neural network; time series predictor; timing control method; training-based control method; transient response converters; Digital control; Neural networks; PD control; Table lookup; Timing; Training; Transient response; Converter control; Neural network;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Electronics and Applications (EPE), 2013 15th European Conference on
Conference_Location :
Lille
Type :
conf
DOI :
10.1109/EPE.2013.6634391
Filename :
6634391
Link To Document :
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