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便携式人工神经网络及其在砼疲劳寿命预测中的应用
引用本文:肖建清,丁德馨,徐根,蒋复量.便携式人工神经网络及其在砼疲劳寿命预测中的应用[J].南华大学学报(自然科学版),2009,23(1):96-100.
作者姓名:肖建清  丁德馨  徐根  蒋复量
作者单位:1. 南华大学,数理学院,湖南,衡阳,421001;中南大学,资源与安全工程学院,湖南,长沙,410083
2. 南华大学,核资源与安全工程学院,湖南,衡阳,421001
3. 中南大学,资源与安全工程学院,湖南,长沙,410083
基金项目:湖南省教育厅资助项目,湖南省安监局基金 
摘    要:基于快速人工神经网络,探讨了利用线性函数对数据进行归一化的方法,结合数据归一化后的值域范围以及用于确定隐含层神经元数目的经验公式,依据网络均方差最小化原则,得到了人工神经网络的结构参数,然后将疲劳实验数据作为训练数据,建立了混凝土疲劳寿命预测的人工神经网络模型,并将其导出为一个独立的便携式模型文件.计算结果表明,该模型计算精确度高,可以方便地嵌入到各种工程软件中,能够解决混凝土疲劳寿命预测模型的准确性和实用性两大难题.

关 键 词:人工神经网络  混凝土  疲劳寿命  数据归一化
收稿时间:2008/12/20 0:00:00

Implication of Portable Artificial Neural Network and its Practice on Fatigue Life Estimation of Concrete
XIAO Jian-qing,DING De-xin,XU Gen,JIANG Fu-liang.Implication of Portable Artificial Neural Network and its Practice on Fatigue Life Estimation of Concrete[J].Journal of Nanhua University:Science and Technology,2009,23(1):96-100.
Authors:XIAO Jian-qing  DING De-xin  XU Gen  JIANG Fu-liang
Institution:1.School of math and physics,University of South China,Hengyang,Hunan 421001,China;2 School of Nuclear Resources and Safety Engineering,University of South China,Hengyang,Hunan 421001,China;3.Resources and Safety Engineering College,Central South University,Changsha,Hunan 410083,China
Abstract:Three linear functions are used to normalize testing results based on Fast Artificial Neural Network.Considering the range of normalized testing results and the number of neurons in hided layer determinated by empirical formula,key parameters of artificial neural network are obtained according to the principle of mean square deviation minimization.Then,an artificial neural network model for estimation of concrete fatigue life is established when testing results are studied as training data and is exported into a portable file.The calculated results have a good agreement with the testing data,and this model can be embedded into engineering software conveniently.Therefore,it can provide higher accuracy and better practicability than general one.
Keywords:artificial neural network  concrete  fatigue life  data normalization
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