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BP神经网络学习算法的改进及应用
引用本文:余妹兰,匡芳君. BP神经网络学习算法的改进及应用[J]. 沈阳农业大学学报, 2011, 42(3): 382-384
作者姓名:余妹兰  匡芳君
作者单位:1. 山东大学软件学院,济南,250101
2. 湖南安全技术职业学院,长沙,410151
基金项目:湖南省高等学校科技研究项目(10C0069)
摘    要:为了研究BP神经网络改进学习算法的适用情况,通过对实际的4个应用运用BP神经网络的多种改进的学习算法进行训练,比较得到各学习算法的适用范围,并能根据所研究问题类型、网络大小和要求精度等来选择合适的学习算法。结果表明:LM算法逼近效果好,但不适合大规模网络,RPROP算法应用于模式识别收敛速度最快,但不太适合函数逼近,SCG算法对较大网络规模的性能很好,且逼近效果好。

关 键 词:BP神经网络  学习算法  改进算法  应用

Improved Learning Algorithms for BP Neural Network and Application
YU Mei-lan,KUANG Fang-jun. Improved Learning Algorithms for BP Neural Network and Application[J]. Journal of Shenyang Aricultural University, 2011, 42(3): 382-384
Authors:YU Mei-lan  KUANG Fang-jun
Affiliation:YU Mei-lan1,KUANG Fang-jun2 (1.School of Software,Shandong University,Jinan 250101,China,2.Hunan Vocational Institute of Safety Technology,Changsha 410151,China)
Abstract:In order to research the application of the BP neural network improved learning algorithm,four practical applications were trained by improved BP neural network learning algorithm,and through comprising these learning algorithms to obtain the adaptation scope of them.Thus,the actual type of research question,network size and precision to choose appropriate learning algorithm were accorded.The experimental results showed that LM algorithm was good to be the function approximation,but not for large-scale netw...
Keywords:BP neural network  learning algorithm  improved algorithm  application  
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