Modeling and Simulation of Time Series Prediction Based on Dynic Neural Network
- 期刊名字:北京理工大学学报
- 文件大小:
- 论文作者:王雪松,程玉虎,彭光正
- 作者单位:School of Information Science and Technology,Laboratory of Complex System and Intelligent Science
- 更新时间:2022-11-03
- 下载次数:次
论文简介
Molding and simulation of time series prediction based on dynic neural network(NN) are studied. Prediction model for non-linear and time-varying system is proposed based on dynic Jordan NN. Aiming at the intrinsic defects of back-propagation (BP) algorithm that cannot update network weights incrementally, a hybrid algorithm combining the temporal difference (TD) method with BP algorithm to train Jordan NN is put forward. The proposed method is applied to predict the ash content of clean coal in jigging production real-time and multi-step. A practical exple is also given and its application results indicate that the method has better performance than others and also offers a beneficial reference to the prediction of nonlinear time series.
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