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首页> 外文期刊>Journal of Computational Physics >A Gauss–Newton full-waveform inversion in PML-truncated domains using scalar probing waves
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A Gauss–Newton full-waveform inversion in PML-truncated domains using scalar probing waves

机译:使用标量探测波的PML截断域中的高斯 - 牛顿全波形反演

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摘要

AbstractThis study considers the characterization of subsurface shear wave velocity profiles in semi-infinite media using scalar waves. Using surficial responses caused by probing waves, a reconstruction of the material profile is sought using a Gauss–Newton full-waveform inversion method in a two-dimensional domain truncated by perfectly matched layer (PML) wave-absorbing boundaries. The PML is introduced to limit the semi-infinite extent of the half-space and to prevent reflections from the truncated boundaries. A hybrid unsplit-field PML is formulated in the inversion framework to enable more efficient wave simulations than with a fully mixed PML. The full-waveform inversion method is based on a constrained optimization framework that is implemented using Karush–Kuhn–Tucker (KKT) optimality conditions to minimize the objective functional augmented by PML-endowed wave equations via Lagrange multipliers. The KKT conditions consist of state, adjoint, and control problems, and are solved iteratively to update the shear wave velocity profile of the PML-truncated domain. Numerical examples show that the developed Gauss–Newton inversion method is accurate enough and more efficient than another inversion method. The algorithm's performance is demonstrated by the numerical examples including the case of noisy measurement responses and the case of reduced number of sources and receivers.Highlights?A Gauss–Newton full-waveform inversion approach combined with a hybrid unsplit-field PML has been developed.?The proposed inversion method improves the accuracy and efficiency of solutions compared to existing inversion methods.?The proposed full-waveform inversion algorithm is robust even in the presence of noise in measured responses.]]>
机译:<![cdata [ Abstract 本研究考虑使用标量波在半无限介质中的地下剪切波速度配置文件的表征。使用由探测波引起的结构响应,在通过完全匹配的层(PML)波吸收边界的二维域中,寻求材料曲线的重建。引入PML以限制半空间的半无限范围,并防止截短边界的反射。在反转框架中配制混合Unsplit-Field PML,以实现比具有完全混合的PML更有效的波模拟。全波形反演方法基于由Karush-Kuhn-Tucker(KKT)最优状态实现的受约束优化框架,以通过LAGRANG乘法器最小化PML禀赋波动方程增强的目标功能。 KKT条件包括状态,伴随和控制问题,并且迭代地解决以更新PML截断域的剪切波速度分布。数值例子表明,开发的高斯 - 牛顿反演方法足够精确,比另一种反转方法更有效。该算法的性能由数值例子证明,包括嘈杂的测量响应的情况以及源和接收器数量减少的情况。 < CE:抽象XMLNS:CE =“http://www.elsevier.com/xml/common/dtd”xmlns =“http://www.elsevier.com/xml/ja/dtd”class =“author-fighlights” id =“ab0020”视图=“全部”> 突出显示 < CE:简单-Cara id =“sp0250”视图=“全部”> 已经开发了Gauss-newton全波形反转方法,结合混合Unsplit-field pml。 所提出的反转方法提高了解决方案的准确性和效率与现有的反演方法相比。 即使在测量响应中存在噪声,所提出的全波形反演算法也是坚固的。 ]]>

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