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On the BP training algorithm of Fuzzy Neural Networks (FNNs) via its equivalent fully connected neural networks (FFNNs)

机译:基于等效神经网络(FFNN)的模糊神经网络(FNN)BP训练算法

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摘要

In this paper, Fuzzy Neural Network (FNN) is first transformed into an equivalent fully connected three layer neural network, or FFNN. Based on the FFNN, BP training algorithm is derived to tune both the premise and consequent part of FNN. Illustrative examples are presented to check the validity of the proposed theory and algorithms. Simulation achieves satisfactory results. Developing BP training algorithm for FNN via its equivalent FFNN has its emerging values in all engineering applications using FNN, such as intelligent adaptive control, pattern recognition, and signal processing …, etc
机译:本文首先将模糊神经网络(FNN)转换为相当于完全连接的三层神经网络,或FFNN。基于FFNN,推导出BP训练算法来调整FNN的前提和随后的一部分。提出了说明性示例以检查所提出的理论和算法的有效性。仿真达到令人满意的结果。通过其等效FFNN开发FNN的BP训练算法在所有工程应用中使用FNN的新出现值,例如智能自适应控制,模式识别和信号处理...,等等

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