Seismic Waveform Inversion of Elastic Properties Using an Iterative Ensemble Kalman Smoother

M. Gineste, J. Eidsvik
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Abstract

Summary Probabilistic inversion of subsurface elastic properties using seismic reflection data is considered. The methodology makes use of data partitioning as a divide-and-conquer strategy, while the conditioning to data makes use of an iterative ensemble Kalman smoother. Augmenting the ensemble Kalman framework with an variational approach is found suitable when conditioning on larger sets of seismic waveform data. The methodology is exemplified using a synthetic case for the inversion of acoustic- and shear velocity and density.
基于迭代集合卡尔曼平滑的地震波形弹性特性反演
研究了利用地震反射资料进行地下弹性性质概率反演的方法。该方法利用数据分区作为分而治之的策略,而对数据的调节利用迭代集成卡尔曼平滑。用变分方法增强集合卡尔曼框架适用于更大的地震波形数据集。该方法以声速、剪切速度和密度的反演为例。
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