Research on Flux Observer Based on Wavelet Neural Network Adjusted by Antcolony Optimization
To improve the performance of extra-low speed in direct torque control (DTC) system, this paper applies wavelet neural network (WNN) to constitute flux observer by deep researching nonlinear mathematic model of stator flux of asynchronous motor. Furthermore, in order to improve rapidity and real tim...
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Published in | 2007 International Conference on Machine Learning and Cybernetics Vol. 2; pp. 862 - 866 |
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Main Authors | , , |
Format | Conference Proceeding |
Language | English |
Published |
IEEE
01.08.2007
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Subjects | |
Online Access | Get full text |
ISBN | 1424409721 9781424409723 |
ISSN | 2160-133X |
DOI | 10.1109/ICMLC.2007.4370263 |
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Abstract | To improve the performance of extra-low speed in direct torque control (DTC) system, this paper applies wavelet neural network (WNN) to constitute flux observer by deep researching nonlinear mathematic model of stator flux of asynchronous motor. Furthermore, in order to improve rapidity and real time characteristics of WNN flux observer, the paper applies ant colony algorithm (ACA) with embedded deterministic searching strategy to optimize dilation factor, translation factor and output weight of WNN. The paper compares this method with wavelet neural network flux observer optimized by gradient descent algorithm. Simulation shows that the former not only can reduce the node numbers of hidden layers and quicken the convergence rate of WNN, but also can improve on-line identification precision of flux observer, so it can effectively improve low speed performance of DTC system. |
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AbstractList | To improve the performance of extra-low speed in direct torque control (DTC) system, this paper applies wavelet neural network (WNN) to constitute flux observer by deep researching nonlinear mathematic model of stator flux of asynchronous motor. Furthermore, in order to improve rapidity and real time characteristics of WNN flux observer, the paper applies ant colony algorithm (ACA) with embedded deterministic searching strategy to optimize dilation factor, translation factor and output weight of WNN. The paper compares this method with wavelet neural network flux observer optimized by gradient descent algorithm. Simulation shows that the former not only can reduce the node numbers of hidden layers and quicken the convergence rate of WNN, but also can improve on-line identification precision of flux observer, so it can effectively improve low speed performance of DTC system. |
Author | Cheng-Zhi Cao Xiao-Feng Guo Wen-Jing Wang |
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Snippet | To improve the performance of extra-low speed in direct torque control (DTC) system, this paper applies wavelet neural network (WNN) to constitute flux... |
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SubjectTerms | Ant colony algorithm Ant colony optimization Control systems Cybernetics Discrete wavelet transforms Flux observer Information science Machine learning Neural networks Pulse width modulation inverters Stators Torque control Wavelet neural network |
Title | Research on Flux Observer Based on Wavelet Neural Network Adjusted by Antcolony Optimization |
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