首页> 中文期刊> 《中国机械工程学报:英文版》 >ON-LINE STATE PREDICTION OF ENGINES BASED ON FLAT NEURAL NETWORK

ON-LINE STATE PREDICTION OF ENGINES BASED ON FLAT NEURAL NETWORK

         

摘要

A flat neural network is designed for the on line state prediction of engine. To reduce the computational cost of weight matrix, a fast recursive algorithm is derived according to the pseudoinverse formula of a partition matrix. Furthermore, the forgetting factor approach is introduced to improve predictive accuracy and robustness of the model. The experiment results indicate that the improved neural network is of good accuracy and strong robustness in prediction, and can apply for the on line prediction of nonlinear multi input multi output systems like vehicle engines.

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