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改进的BP算法在路面裂缝分类中的应用
引用本文:高璐,黎蔚.改进的BP算法在路面裂缝分类中的应用[J].计算机工程与应用,2012,48(28):201-205.
作者姓名:高璐  黎蔚
作者单位:河南科技大学 电子信息工程学院,河南 洛阳 471003
基金项目:河南省交通运输厅科技项目(No.2009p217)
摘    要:针对传统BP神经网络训练速度慢,误差大且易陷入局部极小值的缺点,设计了一种改进的复合误差函数来代替传统的全局均方误差函数以提高其学习率,同时采用了改进的分层动态调整不同学习率的新BP神经网络对路面裂缝图片进行分类。实验结果表明,与传统方法相比,改进后的算法在检测精度和速度上有了明显的提高。

关 键 词:BP神经网络  裂缝分类  复合误差函数  分层动态调整  

Improved BP algorithm in application of road surface crack classification
GAO Lu , LI Wei.Improved BP algorithm in application of road surface crack classification[J].Computer Engineering and Applications,2012,48(28):201-205.
Authors:GAO Lu  LI Wei
Affiliation:Electronic and Information Engineering College, Henan University of Science and Technology, Luoyang, Henan 471003, China
Abstract:Traditional BP neural network has several shortcomings that training speed is slow,probability of error is great and it is easily falling into local minimum.A kind of improved composite error function,which can replace the traditional global squared mean error function,is presented.This novel function can improve the learning rate of the network,and a new BP neural network is introduced which can adjust the learning rate hierarchically and dynamically to classify the cracks in road surface pictures.The experimental results show that,compared with traditional methods,the improved algorithm has achieved a dramatic improvement in precision and speed.
Keywords:BP neural network  crack classification  composite error function  stratified dynamic adjustment
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