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Review Paper: An outlook on the future of seismic imaging, Part III: Joint Migration Inversion

机译:评论文件:地震成像的未来展望,第三部分:联合偏移反演

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The next generation seismic imaging algorithms will consider multiple scattering as indispensable information, referred to as Full Wavefield Migration. In addition, these algorithms will also include autonomous velocity updating in the migration process, referred to as Joint Migration Inversion. Full wavefield migration and joint migration inversion address the industrial needs of improving images of very complex reservoirs as well as the industry ambition of producing these images in a more automatic manner ('automation in seismic processing').In this vision paper on seismic imaging, full wavefield migration and joint migration inversion are formulated in terms of a closed-loop, estimation algorithm that can be physically explained by an iterative double focusing process (full wavefield Common-Focus-Point technology). A critical module in this formulation is forward modelling, allowing feedback from migrated output to unmigrated input ('closing the loop'). For this purpose a full wavefield modelling module has been developed that utilizes an operator description of complex geology. Full wavefield modelling module is pre-eminently suited to function in the feedback path of a closed-loop migration algorithm.'The Future of Seismic Imaging' is presented as a coherent trilogy, proposing in three consecutive parts the migration framework of the future. In part I it was shown that the proposed full wavefield modelling module algorithm differs fundamentally from finite difference modelling, as velocities and densities need not be provided. Instead, full wavefield modelling module uses an operator description of the subsurface. In Part II it was shown how the theory of Primary Wavefield Migration can be extended to Full Wavefield Migration by correcting for elastic transmission effects and by utilizing multiple scattering. In Part III it is shown how the full wavefield migration technology can be extended to Joint Migration Inversion, allowing full wavefield migration of blended data without knowledge of the velocity. Velocities are part of the joint migration inversion output, being obtained by an operator-driven parametric inversion process. The potential of the proposed joint migration inversion algorithm is illustrated with numerical examples.
机译:下一代地震成像算法会将多重散射视为必不可少的信息,称为全波场迁移。此外,这些算法还将在迁移过程中包括自主速度更新,称为联合迁移反演。全波场偏移和联合偏移反演满足了改善非常复杂的油藏图像的工业需求,以及以更自动化的方式(“地震处理自动化”)生产这些图像的行业野心。全波场偏移和联合偏移反演是根据闭环估计算法制定的,该算法可以通过迭代双聚焦过程(全波场共焦点技术)进行物理解释。此公式中的一个关键模块是正向建模,它允许从迁移的输出到未迁移的输入的反馈(“闭环”)。为此,已经开发了一个完整的波场建模模块,该模块利用了操作人员对复杂地质的描述。全波场建模模块非常适合在闭环偏移算法的反馈路径中发挥作用。“地震成像的未来”是一个连贯的三部曲,在三个连续的部分中提出了未来的偏移框架。在第一部分中,表明了所提出的全波场建模模块算法与有限差分建模根本不同,因为不需要提供速度和密度。相反,全波场建模模块使用地下的算子描述。在第二部分中,展示了如何通过校正弹性传输效应和利用多重散射将主波场迁移理论扩展到全波场迁移。在第三部分中,展示了如何将全波场偏移技术扩展到联合偏移反演,从而在不了解速度的情况下允许混合数据的全波场偏移。速度是联合偏移反演输出的一部分,它是由操作员驱动的参数反演过程获得的。数值算例说明了提出的联合偏移反演算法的潜力。

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