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首页> 外文期刊>Journal of Seismic Exploration >A GRADIENT SCALING METHOD FOR LAPLACE DOMAIN FULL WAVEFORM INVERSION IN ACOUSTIC-ELASTIC COUPLED MEDIA
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A GRADIENT SCALING METHOD FOR LAPLACE DOMAIN FULL WAVEFORM INVERSION IN ACOUSTIC-ELASTIC COUPLED MEDIA

机译:声-弹性耦合介质中Laplace域全波形反演的梯度标度方法

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摘要

In 2D full waveform inversions of acoustic-elastic coupled media, wave propagation is described by the acoustic and isotropic elastic wave equations. To consider the irregular topography of the seafloor in full waveform inversions, the interface between the acoustic and elastic media in wave propagation modeling by the finite element method is represented using both square and isosceles triangular elements. However, numerical artifacts are generated near the seafloor, and widespread abnormal gradient directions are generated in the high velocity area in the target model, when the gradient direction is calculated during full waveform inversion in the Laplace domain. This issue generates unsuitable inversion results near the seafloor. We propose a scaling function that minimizes numerical artifacts in the gradient direction for Laplace domain full waveform inversion of acoustic-elastic coupled media. Based on a heuristic approach, we describe a gradient scaling method of Laplace-domain waveform inversion in acoustic-elastic coupled media that can be used to construct more accurate P- and S-wave velocity models of geological targets beneath the seafloor than previous methods. The technique scales the gradient direction using an accumulated gradient that is generated from the accumulated sum of the squares of the conventional gradient with respect to depth. This approach is designed to improve the imaging of large anomalies with high-velocity structures and to attenuate artifacts that are related to an irregular seafloor. We perform numerical tests using the synthetic SEG/EAGE salt model and field data. The numerical results demonstrate the validity of Laplace-domain waveform inversions that are calculated with the new scaling method for acoustic-elastic coupled media. The proposed gradient scaling method reduces artifacts more with field data than in the synthetic case. In particular, the abnormal high velocity areas near the seafloor in the inverted P- and S-wave velocity models are effectively removed by the gradient scaling method. We also conduct frequency-domain waveform inversion using the Laplace-domain inversion results as an initial model to confirm the accuracy of the inverted model of field data from our proposed inversion algorithm. The reverse time migration images and synthetic seismograms that were obtained from the field data indicate that this gradient scaling method is a useful tool for building accurate long-wavelength inverted P-and S-wave velocity models of field data from the Laplace domain full waveform inversion.
机译:在声弹耦合介质的二维全波形反演中,波传播由声波和各向同性弹性波方程描述。为了考虑全波形反演中海底的不规则地形,在有限元方法的波传播建模中,声学和弹性介质之间的界面用正方形和等腰三角形元素表示。但是,当在Laplace域中进行全波形反演时计算梯度方向时,会在海底附近生成数值伪像,并在目标模型的高速区域中生成广泛的异常梯度方向。这个问题在海底附近产生了不合适的反演结果。我们提出了一种缩放函数,可将声弹耦合介质的Laplace域全波形反演的梯度方向上的数值伪影最小化。基于启发式方法,我们描述了声弹性耦合介质中Laplace域波形反演的梯度缩放方法,该方法可用于构建比以前的方法更精确的海底地质目标的P波和S波速度模型。该技术使用从常规梯度相对于深度的平方的累加和生成的累积梯度来缩放梯度方向。此方法旨在改善具有高速结构的大型异常的成像,并减弱与不规则海底有关的伪影。我们使用合成的SEG / EAGE盐模型和现场数据进行数值测试。数值结果证明了用新的缩放方法对声弹耦合介质计算的拉普拉斯域波形反演的有效性。与合成情况相比,所提出的梯度缩放方法通过场数据可以减少伪像。尤其是,通过梯度缩放方法可以有效地消除反向P波和S波速度模型中海床附近的异常高速区域。我们还使用拉普拉斯域反演结果作为初始模型进行频域波形反演,以从我们提出的反演算法中确认场数据反演模型的准确性。从现场数据获得的逆时偏移图像和合成地震图表明,这种梯度缩放方法是一种有用的工具,可用于根据拉普拉斯域全波形反演建立准确的长波场数据的长波倒置P波和S波速度模型。

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