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Data-driven wavefield focusing and imaging with multidimensional deconvolution: Numerical examples for reflection data with internal multiples

机译:多维解卷积的数据驱动波场聚焦和成像:具有内部倍数的反射数据的数值示例

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摘要

Standard imaging techniques rely on the single scattering assumption. This requires that the recorded data do not include internal multiples, i.e., waves that have bounced multiple times between reflectors before reaching the receivers at the acquisition surface. When multiple reflections are present in the data, standard imaging algorithms incorrectly image them as ghost reflectors. These artifacts can mislead interpreters in locating potential hydrocarbon reservoirs. Recently, we introduced a new approach for retrieving the Green's function recorded at the acquisition surface due to a virtual source located at depth.We refer to this approach as data-driven wavefield focusing. Additionally, after applying source-receiver reciprocity, this approach allowed us to decompose the Green's function at a virtual receiver at depth in its downgoing and upgoing components. These wavefields were then used to create a ghost-free image of the medium with either crosscorrelation or multidimensional deconvolution, presenting an advantage over standard prestack migration.We tested the robustness of our approach when an erroneous background velocity model is used to estimate the first-arriving waves, which are a required input for the datadriven wavefield focusing process. We tested the new method with a numerical example based on a modification of the Amoco model.
机译:标准成像技术依赖于单个散射假设。这就要求记录的数据不包括内部倍数,即在到达采集面的接收器之前在反射器之间多次反射的波。当数据中存在多次反射时,标准成像算法会错误地将它们成像为幻影反射器。这些文物可能会误导解释人员,以寻找潜在的油气藏。最近,由于一种位于深处的虚拟源,我们引入了一种新方法来检索记录在采集面的格林函数,该方法称为数据驱动波场聚焦。此外,在应用了源接收器互易性之后,这种方法使我们能够在虚拟接收器的下行组件和上行组件的深处分解Green的功能。然后使用这些波场创建具有互相关或多维解卷积的介质的无鬼影图像,与标准叠前偏移相比具有优势。我们使用错误的背景速度模型估算第一个信号时,我们测试了方法的鲁棒性-到达波,这是数据驱动波场聚焦过程的必需输入。我们用基于Amoco模型修改的数值示例测试了新方法。

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