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深基坑变形预测的进化支持向量机模型
引用本文:师旭超,梁醒培. 深基坑变形预测的进化支持向量机模型[J]. 武汉理工大学学报, 2010, 0(1)
作者姓名:师旭超  梁醒培
作者单位:河南工业大学土木建筑学院;
基金项目:河南省高校青年骨干教师资助项目(2004099)
摘    要:提出了深基坑变形预测的进化支持向量机方法。利用遗传算法来搜索支持向量机与核函数的参数,避免了人为选择参数的盲目性,同时提高了支持向量机的推广预测能力。利用优化后的模型对基坑实例进行了变形预测,并将预测结果与监测结果进行了对比。研究结果表明,该模型与神经网络模型相比,具有预测精度高、泛化能力强等优点,对基坑安全监控具有实用价值。

关 键 词:深基坑  变形  遗传算法  支持向量机  

Prediction Deformation of Deep Excavation Based on GA-support Vector Machine
SHI Xu-chao,LIANG Xing-pei. Prediction Deformation of Deep Excavation Based on GA-support Vector Machine[J]. Journal of Wuhan University of Technology, 2010, 0(1)
Authors:SHI Xu-chao  LIANG Xing-pei
Affiliation:SHI Xu-chao,LIANG Xing-pei (Department of Civil Engineering,Henan University of Technology,Zhengzhou 450052,China)
Abstract:It proposes a new method to predict deformations in deep excavation based on genetic arithmetic and support vector machine.The parameters of the SVM model optimized by genetic arithmetic and best parameters are obtained.The model is verified with the experiment datum,result of prediction by the optimized SVM model is compared with the test datum.The application shows that this model is better than the models based on BP neural networks;It possesses the advantage of high accuracy of forecasting and high abil...
Keywords:deep excavation  deformation  genetic arithmetic  support vector machine  
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