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Multi-parameter reflection waveform inversion for acoustic transversely isotropic media with a vertical symmetry axis

机译:具有垂直对称轴的声学横向各向同性介质的多参数反射波形反演

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Full waveform inversion in transversely isotropic media with a vertical symmetry axis provides an opportunity to better match the data at the near and far offsets. However, multi-parameter full waveform inversion, in general, suffers from serious cycle-skipping and trade-off problems. Reflection waveform inversion can help us recover a background model by projecting the residuals of the reflected wavefield along the reflection wavepath. Thus, we extend reflection waveform inversion to acoustic transversely isotropic media with a vertical symmetry axis utilizing the proper parameterization for reduced parameter trade-off. From a radiation patterns analysis, an acoustic transversely isotropic media with a vertical symmetry axis is better described by a combination of the normal-moveout velocityvnand the anisotropic parameters eta and delta for reflection waveform inversion applications. We design a three-stage inversion strategy to construct the optimal resulting model. In the first stage, we only invert for the backgroundvnby matching the simulated reflected wavefield from the perturbations ofvnand delta with the observed reflected wavefield. In the second stage, the backgroundvnand eta are optimized simultaneously and the far-offset reflected wavefield mainly contribute to their updates. We perform Born modelling to compute the reflected wavefield for the two stages of reflection waveform inversion. In the third stage, we perform full waveform inversion for the acoustic transversely isotropic media with a vertical symmetry axis to delineate the high-wavenumber structures. For this stage, the medium is described by a combination of the horizontal velocityvh, eta and epsilon instead ofvn, eta and delta. The acoustic multi-parameter full waveform inversion utilizes the diving waves to improve the background as well as utilizes reflection for high-resolution information. Finally, we test our inversion algorithm on the modified Sigsbee 2A model (a salt free part) and a two-dimensional line from a three-dimensional ocean bottom cable dataset. The results demonstrate that the proposed reflection waveform inversion approach can recover the background model for acoustic transversely isotropic media with a vertical symmetry axis starting from an isotropic model. This recovered background model can mitigate the cycle skipping of full waveform inversion and help the inversion recover higher resolution structures.
机译:具有垂直对称轴的横向各向同性介质中的全波形反转提供了一个机会,可以更好地匹配近距离偏移的数据。但是,一般来说,多参数全波形反转遭受严重的循环跳跃和权衡问题。反射波形反转可以通过突出反射波度突出反射波场的残差来帮助我们恢复背景模型。因此,我们利用适当参数化的垂直对称轴扩展到声学横向各向同性介质的反射波形反转,利用适当的参数化进行减少参数折衷。根据辐射模式分析,通过正常 - MoveOut VelocityVnAnd的组合来更好地描述具有垂直对称轴的声学横向各向同性介质,用于反射波形反转应用的各向异性参数ETA和DELTA。我们设计了一种三级反转策略来构建最佳结果模型。在第一阶段,我们只对观察到的反射波场争辩地争辩匹配模拟反射波场的模拟反射波场。在第二阶段,BackgroundVnand ETA同时优化,远偏移的反射波面主要有助于其更新。我们执行出生的建模以计算反射波形反转的两个阶段的反射波场。在第三阶段,我们用垂直对称轴对声学横向各向同性介质进行全波形反演,以描绘高波数结构。对于该阶段,培养基由水平肠,ETA和epsilon的组合描述而不是Vn,Eta和Delta。声学多参数全波形反演利用潜水波来改进背景,并利用高分辨率信息的反射。最后,我们在修改的Sigsbee 2a模型(盐自由零件)上测试我们的反转算法,以及从三维海底电缆数据集的二维线。结果表明,所提出的反射波形反转方法可以用从各向同性模型开始用垂直对称轴的声学横向各向同性介质的背景模型。该恢复的背景模型可以减轻全波形反转的循环跳跃,并帮助反演恢复更高的分辨率结构。

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