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Research on Application of Fuzzy Neural Networks for Logistics Forecasting

机译:模糊神经网络在物流预测中的应用研究

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In this paper, a fuzzy neural network system to estimate future logistics demand was proposed and trained. The structure of neural network in the system is different from BP network, with the nonlinear sigmoid functions in the networks replaced by fuzzy reasoning process and wavelet functions respectively. Moreover, the trained network system is put into practical logistics demand forecasting. The experimental results show that it has good properties such as a fast convergence, high precision and strong function approximation ability and is good at predicting future logistics amount.
机译:本文提出并训练了一种模糊神经网络系统来估计未来的物流需求。系统中神经网络的结构不同于BP网络,网络中的非线性S型函数分别由模糊推理过程和小波函数代替。而且,将训练有素的网络系统投入到实际的物流需求预测中。实验结果表明,该算法具有收敛速度快,精度高,函数逼近能力强等特点,对预测未来的物流量具有良好的预测能力。

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