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Waveform inversion in acoustic orthorhombic media with a practical set of parameters

机译:具有实用参数集的正交各向异性介质中的波形反演

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摘要

Full-waveform inversion (FWI) in anisotropic media is overall challenging, mainly because of the large computational cost, especially in 3D, and the potential trade-offs between the model parameters needed to describe such a media. We propose an efficient 3D FWI implementation for orthorhombic anisotropy under the acoustic assumption. Our modeling is based on solving the pseudo-differential orthorhombic wave equation split into a differential operator and a scalar one. The modeling is computationally efficient and free of shear wave artifacts. Using the adjoint state method, we derive the gradients with respect to a practical set of parameters describing the acoustic orthorhombic model, made of one velocity and five dimensionless parameters. This parameterization allows us to use a multi-stage model inversion strategy based on the continuity of the scattering potential of the parameters as we go from higher symmetry anisotropy to lower ones. We apply the proposed approach on a modified SEG-EAGE overthrust synthetic model. The quality of the inverted model suggest that we may recover only 4 parameters, with different resolution scales depending on the scattering potential of these parameters.
机译:各向异性介质中的全波形反演(FWI)总体上具有挑战性,这主要是因为计算量大,尤其是在3D中,而且描述这种介质所需的模型参数之间可能存在取舍。我们提出了一种有效的3D FWI实现方案,用于声学假设下的正交各向异性。我们的建模基于求解拟微分正交斜波方程,将其分为微分算子和标量算子。该建模在计算上是有效的,并且没有剪切波伪像。使用伴随状态方法,我们推导了相对于一组实际参数的梯度,这些参数描述了由一个速度和五个无量纲参数构成的正交正交模型。当我们从较高的对称各向异性变为较低的各向异性时,此参数化允许我们使用基于参数散射势连续性的多阶段模型反演策略。我们将提出的方法应用于经过改进的SEG-EAGE上推覆综合模型。倒置模型的质量表明,我们只能恢复4个参数,这些参数具有不同的分辨率范围,具体取决于这些参数的散射潜力。

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