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首页> 外文期刊>Journal of Applied Geophysics >Accelerating full waveform inversion using HSS solver and limited memory conjugate gradient method
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Accelerating full waveform inversion using HSS solver and limited memory conjugate gradient method

机译:使用HSS求解器和有限的内存共轭梯度方法加速全波形反演

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Full waveform inversion (FWI) consists in finding an accurate optimal model of the subsurface from local measurements of the seismic wavefield. This aim is achieved by minimizing the difference between the observed and predicted data, starting from an initial estimation of the subsurface parameters. One challenge for FWI is its intensive large-scale wavefield simulations, which seriously restricts its wide applications. Additionally, due to the ill-posedness of FWI problem, when the nonlinear conjugate gradient method is employed, the current gradient often lies in the space spanned by the previous directions, resulting in very slow convergence. In this paper, a limited memory version conjugate gradient method equipped with the scalable HSS-structured multifrontal solver is applied to efficiently solve the FWI problem. A hierarchically preconditioned scheme is considered to enhance the robustness of the inversion algorithm. Numerical experiments including 2D and 3D are illustrated to show the performances of this high efficient inversion algorithm. (C) 2018 Elsevier B.V. All rights reserved.
机译:全波形反转(FWI)包括从地震波场的局部测量找到地下的准确最佳模型。通过从地下参数的初始估计开始,通过最小化观察和预测数据之间的差异来实现该目的。 FWI的一个挑战是其强烈的大型波场模拟,严重限制了其广泛的应用。另外,由于FWI问题的不良存在,当采用非线性缀合物梯度方法时,电流梯度通常位于先前方向跨越的空间中,导致收敛非常慢。本文采用了一种有限的内存版本缀合物梯度方法,配备可伸缩的HSS结构化的多边形求解器,以有效解决FWI问题。认为分层预处理方案增强了反转算法的鲁棒性。示出了包括2D和3D的数值实验,以示出这种高效反转算法的性能。 (c)2018 Elsevier B.v.保留所有权利。

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