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Full–waveform inversion using the excitation representation of the source wavefield

机译:使用源波场的激励表示进行全波形反演

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摘要

Full waveform inversion (FWI) is an iterative method of data-fitting, aiming at high resolution recovery of the unknown model parameters. However, it is a cumbersome process, requiring a long computational time and large memory space/disc storage. One of the reasons for this computational limitation is the gradient calculation step. Based on the adjoint state method, it involves the temporal cross-correlation of the forward propagated source wavefield with the backward propagated residuals, in which we usually need to store the source wavefield, or include an extra extrapolation step to propagate the source wavefield from its storage at the boundary. We propose, alternatively, an amplitude excitation gradient calculation based on the excitation imaging condition concept that represents the source wavefield history by a single, specifically the most energetic arrival. An excitation based Born modeling allows us to derive the adjoint operation. In this case, the source wavelet is injected by a cross-correlation step applied to the data residual directly. Representing the source wavefield through the excitation amplitude and time, we reduce the large requirements for both storage and the computational time. We demonstrate the application of this approach on a 2-layer model with an anomaly and the Marmousi II model.
机译:全波形反演(FWI)是一种数据拟合的迭代方法,旨在高分辨率恢复未知模型参数。但是,这是一个麻烦的过程,需要较长的计算时间和较大的存储空间/光盘存储。这种计算限制的原因之一是梯度计算步骤。基于伴随状态方法,它涉及正向传播源波场与反向传播残差的时间互相关,在这种情况下,我们通常需要存储源波场,或者包括额外的外推步骤以从其传播声源波场。在边界存储。或者,我们提出了基于激发成像条件概念的振幅激发梯度计算,该成像条件概念通过单个(特别是最有活力的)到达来表示源波场历史。基于激励的Born建模使我们能够导出伴随运算。在这种情况下,源小波通过直接应用于数据残差的互相关步骤注入。通过激发幅度和时间来表示源波场,我们减少了对存储和计算时间的大量要求。我们演示了这种方法在具有异常的2层模型和Marmousi II模型上的应用。

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