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基于曲率信息的改进BP算法及其在FNN中的应用
引用本文:熊伟丽,孙文心,史旭东.基于曲率信息的改进BP算法及其在FNN中的应用[J].系统仿真学报,2020,32(1):1-8.
作者姓名:熊伟丽  孙文心  史旭东
作者单位:1. 江南大学 物联网工程学院,江苏 无锡 214122;2. 江南大学 轻工过程先进控制教育部重点实验室,江苏 无锡 214122
基金项目:国家自然科学基金(61773182)
摘    要:针对步长选取影响误差反向传播(BP,Back Propagation)算法优化效率问题,提出一种基于曲率信息的步长优化BP算法,并将其应用到了模糊神经网络(FNN)的训练过程中。参考牛顿法的思想,根据代价函数的梯度及梯度方向上的曲率信息来确定模型参数调整的方向和幅度。仅需考虑梯度方向上的二阶信息,因此不需要存储和处理Hessian矩阵。通过一个数值仿真和高炉炼铁过程数据建模实验,验证了方法的有效性及训练效率。

关 键 词:步长优化  BP算法  模糊神经网络  学习速度  
收稿时间:2017-11-08

Curvature-based BP Algorithm Optimization and Its Application in FNN
Xiong Weili,Sun Wenxin,ShiXudong.Curvature-based BP Algorithm Optimization and Its Application in FNN[J].Journal of System Simulation,2020,32(1):1-8.
Authors:Xiong Weili  Sun Wenxin  ShiXudong
Institution:1. School of Internet of Things Engineering, Jiangnan University, Wuxi 214122, China;2. Key Laboratory of Advanced Process Control for Light Industry (Ministry of Education), Jiangnan University, Wuxi 214122, China
Abstract:In order to improve the optimization efficiency of BP algorithm affected by the selection of step size, a step size optimization BP algorithm based on curvature information is proposed and applied to the training process of FNN(Fuzzy Neural Network). Reference to Newton’s method, The gradient of the cost function and the curvature information in the direction are calculated to determine the direction and magnitude of the parameter adjustment in each iteration. This method only needs to consider the two order information of the gradient direction, so it does not need the storage and processing of Hessian matrix. The effectiveness and efficiency of the proposed method are verified by a numerical simulation and data simulation of blast furnace ironmaking process.
Keywords:Step size optimization  BP algorithm  Fuzzy neural network  Learning speed
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