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Q-Least Squares Reverse Time Migration with Viscoacoustic Deblurring Filters

机译:Q-最小二乘逆时偏移与粘声去模糊滤波器

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摘要

Viscoacoustic least-squares reverse time migration (Q-LSRTM) linearly inverts for the subsurface reflectivity model from lossy data. Compared to the conventional migration methods, it can compensate for the amplitude loss in the migrated images because of the strong subsurface attenuation and can produce reflectors that are accurately positioned in depth. However, the adjoint Q propagators used for backward propagating the residual data are also attenuative. Thus, the inverted images from Q-LSRTM are often observed to have lower resolution when compared to the benchmark acoustic LSRTM images from acoustic data. To increase the resolution and accelerate the convergence of Q-LSRTM, we propose using viscoacoustic deblurring filters as a preconditioner for Q-LSRTM. These filters can be estimated by matching a simulated migration image to its reference reflectivity model. Numerical tests on synthetic and field data demonstrate that Q-LSRTM combined with viscoacoustic deblurring filters can produce images with higher resolution and more balanced amplitudes than images from acoustic RTM, acoustic LSRTM and Q-LSRTM when there is strong attenuation in the background medium. The proposed preconditioning method is also shown to improve the convergence rate of Q-LSRTM by more than 30 percent in some cases and significantly compensate for the lossy artifacts in RTM images.
机译:粘声最小二乘逆时偏移(Q-LSRTM)可根据有损数据对地下反射率模型进行线性反演。与传统的偏移方法相比,由于强大的次表面衰减,它可以补偿偏移图像中的振幅损失,并可以产生深度精确定位的反射器。但是,用于向后传播残差数据的伴随Q传播器也是衰减性的。因此,与来自声学数据的基准声学LSRTM图像相比,通常观察到来自Q-LSRTM的反转图像具有较低的分辨率。为了提高分辨率并加速Q-LSRTM的收敛,我们建议使用粘声去模糊滤波器作为Q-LSRTM的前置条件。这些滤波器可以通过将模拟迁移图像与其参考反射率模型进行匹配来估算。对合成数据和现场数据的数值测试表明,与Q-LSRTM结合使用粘声去模糊滤波器相比,在背景介质中存在强烈衰减的情况下,与声学RTM,声学LSRTM和Q-LSRTM的图像相比,Q-LSRTM可以产生分辨率更高且振幅更均衡的图像。在某些情况下,所提出的预处理方法还可以将Q-LSRTM的收敛速度提高30%以上,并显着补偿RTM图像中的有损伪像。

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