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基于改进的OLS-RBF模型的感潮河段潮位预测研究 被引量:5
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作者 王林波 《水利规划与设计》 2017年第6期51-54,共4页
文章采用梯度下降函数对传统OLS-RBF模型基础函数权重矩阵进行优化计算,解决传统模型计算收敛效率较差的局限,并将改进的OLS-RBF模型应用于辽宁东部沿海感潮河段的潮位预测。研究结果表明:改进的OLS-RBF模型可将传统模型的收敛效率提高7... 文章采用梯度下降函数对传统OLS-RBF模型基础函数权重矩阵进行优化计算,解决传统模型计算收敛效率较差的局限,并将改进的OLS-RBF模型应用于辽宁东部沿海感潮河段的潮位预测。研究结果表明:改进的OLS-RBF模型可将传统模型的收敛效率提高70.2%;在感潮河段最高和最低潮位预测的均方差分别减少8.6%和11.6%,自相关系数分别提高0.23和0.31。研究成果对于沿海感潮河段潮位预测方法提供参考价值。 展开更多
关键词 OLS-RBF模型 梯度下降函数 潮位预测 辽东沿海
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A Coordinate Gradient Descent Method for Nonsmooth Nonseparable Minimization 被引量:9
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作者 Zheng-Jian Bai Michael K. Ng Liqun Qi 《Numerical Mathematics(Theory,Methods and Applications)》 SCIE 2009年第4期377-402,共26页
This paper presents a coordinate gradient descent approach for minimizing the sum of a smooth function and a nonseparable convex function.We find a search direction by solving a subproblem obtained by a second-order a... This paper presents a coordinate gradient descent approach for minimizing the sum of a smooth function and a nonseparable convex function.We find a search direction by solving a subproblem obtained by a second-order approximation of the smooth function and adding a separable convex function.Under a local Lipschitzian error bound assumption,we show that the algorithm possesses global and local linear convergence properties.We also give some numerical tests(including image recovery examples) to illustrate the efficiency of the proposed method. 展开更多
关键词 Coordinate descent global convergence linear convergence rate
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Full waveform inversion with spectral conjugategradient method
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作者 LIU Xiao LIU Mingchen +1 位作者 SUN Hui WANG Qianlong 《Global Geology》 2017年第1期40-45,共6页
Spectral conjugate gradient method is an algorithm obtained by combination of spectral gradient method and conjugate gradient method,which is characterized with global convergence and simplicity of spectral gradient m... Spectral conjugate gradient method is an algorithm obtained by combination of spectral gradient method and conjugate gradient method,which is characterized with global convergence and simplicity of spectral gradient method,and small storage of conjugate gradient method.Besides,the spectral conjugate gradient method was proved that the search direction at each iteration is a descent direction of objective function even without relying on any line search method.Spectral conjugate gradient method is applied to full waveform inversion for numerical tests on Marmousi model.The authors give a comparison on numerical results obtained by steepest descent method,conjugate gradient method and spectral conjugate gradient method,which shows that the spectral conjugate gradient method is superior to the other two methods. 展开更多
关键词 ful l waveform inversion spectral conjugate gradient method conjugate gradient method steepest descent method
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Adaptive merit function in SPGD algorithm for beam combining
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作者 杨国庆 刘立生 +2 位作者 姜振华 王挺峰 郭劲 《Optoelectronics Letters》 EI 2016年第5期398-400,共3页
The beam pointing is the most crucial issue for beam combining to achieve high energy laser output. In order to meet the turbulence situation, a beam pointing method that cooperates with the stochastic parallel gradie... The beam pointing is the most crucial issue for beam combining to achieve high energy laser output. In order to meet the turbulence situation, a beam pointing method that cooperates with the stochastic parallel gradient descent(SPGD) algorithm is proposed. The power-in-the-bucket(PIB) is chosen as the merit function, and its radius changes gradually during the correction process. The linear radius and the exponential radius are simulated. The results show that the exponential radius has great promise for beam pointing. 展开更多
关键词 pointing turbulence exponential correction merit radius stochastic chosen descent disturbance
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