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刘开云, 方 昱, 刘保国. 基于进化高斯过程回归算法的隧道工程弹塑性模型参数反演[J]. 岩土工程学报, 2011, 33(6): 883.
引用本文: 刘开云, 方 昱, 刘保国. 基于进化高斯过程回归算法的隧道工程弹塑性模型参数反演[J]. 岩土工程学报, 2011, 33(6): 883.
LIU Kai-yun, FANG Yu, LIU Bao-guo. Elasto-plastic parameter inversion of tunnel engineering based on genetic-Gaussian process regression algorithm[J]. Chinese Journal of Geotechnical Engineering, 2011, 33(6): 883.
Citation: LIU Kai-yun, FANG Yu, LIU Bao-guo. Elasto-plastic parameter inversion of tunnel engineering based on genetic-Gaussian process regression algorithm[J]. Chinese Journal of Geotechnical Engineering, 2011, 33(6): 883.

基于进化高斯过程回归算法的隧道工程弹塑性模型参数反演

Elasto-plastic parameter inversion of tunnel engineering based on genetic-Gaussian process regression algorithm

  • 摘要: 学习机器性能是决定智能位移反分析效果的关键,针对现有智能反分析存在的问题,将高斯过程回归(Gaussian Process Regression,简称GPR)引入隧道工程计算模型参数的反演,并采用单一各向同性核函数之和作为GPR的组合核函数以提高其泛化性能。为克服传统共轭梯度法优化求取最优GPR超参数的缺陷,改用十进制遗传算法替代共轭梯度法在训练过程中搜索GPR最优超参数,并编制了相应的计算程序。结合北口隧道施工监测进行了算法程序的应用,并与进化–单一核函数高斯过程回归算法和进化支持向量回归(SVR)算法的应用结果作了对比,结果表明本文提出的进化高斯过程算法显著提高了反演精度,可以应用于岩土工程计算模型参数的反演辨识,并为类似工程提供了借鉴。

     

    Abstract: Performance of learning machines is the key to determine the effectiveness of intelligent displacement back analysis. The Gaussian process regression (GPR) algorithm is introduced into the field of parameter inversion to make up for the deficiency of the present intelligent inversion method. In addition, a combined kernel function of GPR(CKGPR) obtained by additive single standard isotropy covariance functions is put forward to improve the generalization ability of a single kernel function. At present, the hyper-parameters of GPR are achieved by maximizing likelihood function of training samples based on the conjugate gradient algorithm. The conjugate gradient algorithm is replaced by the genetic algorithm (GA) coded in decimal system to optimize the hyper-parameters of GPR with the combined kernel function, and the corresponding calculation code is programmed in Matlab. From the elasto-plastic parameter inversion results of Beikou tunnel, it can be concluded that the GA-CKGPR algorithm can obviously improve the inversion precision than the standard GA-GPR and GA-SVR algorithms, so it can be utilized in parameter inversion of geotechnical engineering and meanwhile can serve as a reference for similar projects.

     

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