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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Joint ray plus Born least-squares migration and simulated annealing optimization for target-oriented quantitative seismic imaging
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Joint ray plus Born least-squares migration and simulated annealing optimization for target-oriented quantitative seismic imaging

机译:面向目标的定量地震成像的联合射线加Born最小二乘迁移和模拟退火优化

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摘要

A seismic processing workflow based on iterative ray + Born migration/inversion and target-oriented postprocessing of the migrated image is developed for fine-scale quantitative characterization of reflectors. The first step of the workflow involves linear iterations of the ray + Born migration/inversion. The output of the first step is a true-amplitude migrated image parameterized by velocity perturbations. In a second step, postprocessing of the migrated image is performed through a random search with a very-fast simulated annealing (VFSA) algorithm. The forward problem of the global optimization is a simple convolutional model that linearly relates a vertical profile of the band-limited migrated image after depth-to-time conversion to a 1D velocity model composed of a stack of homogeneous layers of arbitrary velocity and thickness. The aim of the postprocessing is to eliminate the limited bandwidth effects of the source from the migrated image for resolution improvement and enhanced geological interpretation of selected targets. The global optimization approach allows for uncertainty analysis required by the intrinsic nonuniqueness of the velocity model output by the postprocessing. The relevance of the convolutional model when applied to the output of the ray + Born migrated inversion is first illustrated with a one-layer model. The accuracy and the robustness of the workflow to image geologically complicated models are then illustrated with an application to the synthetic Marmousi model. Some practical issues (e. g., the source wavelet estimate and the scaling of the migrated image required by the VFSA optimization) are discussed with an application to a 2D real seismic multichannel reflection data set collected in the Gulf of Guayaquil (Ecuador). The postprocessing is applied to derive the fine-scale velocity structure of a decollement zone on top of the subduction channel. The postprocessing allows for mapping structural variations along different segments of the decollement, which can be associated with changes in fluid content and porosity.
机译:开发了基于迭代射线+ Born偏移/反演和偏移图像的目标定向后处理的地震处理工作流程,用于反射器的精细定量表征。工作流程的第一步涉及ray + Born迁移/反演的线性迭代。第一步的输出是通过速度扰动参数化的真振幅迁移图像。第二步,通过使用非常快速的模拟退火(VFSA)算法的随机搜索对迁移后的图像进行后处理。全局优化的正向问题是一个简单的卷积模型,该模型将深度到时间转换后的带限迁移图像的垂直轮廓与由任意速度和厚度的均质层堆叠组成的一维速度模型线性相关。后处理的目的是从迁移的图像中消除源的有限带宽效应,以提高分辨率并增强选定目标的地质解释。全局优化方法允许进行后处理输出的速度模型的固有非唯一性所需的不确定性分析。首先使用一个单层模型说明将卷积模型应用于ray + Born迁移反演的输出时的相关性。然后,通过对合成Marmousi模型的应用,说明了对地质复杂模型进行成像的工作流的准确性和鲁棒性。讨论了一些实际问题(例如,源小波估计和VFSA优化所需的偏移图像的缩放),并将其应用于在瓜亚基尔湾(厄瓜多尔)收集的二维真实地震多通道反射数据集。进行后处理以得出俯冲通道顶部的缩流带的精细尺度速度结构。后处理允许沿着脱弯的不同部分映射结构变化,这可能与流体含量和孔隙率的变化相关。

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