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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Improving input/output performance in 2D and 3D angle-domain common-image gathers from reverse time migration
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Improving input/output performance in 2D and 3D angle-domain common-image gathers from reverse time migration

机译:通过逆向时间迁移改善2D和3D角域公共图像采集中的输入/输出性能

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We have developed a new method of extracting angle-domain common-image gathers (ADCIGs) from prestack reverse time migration (RTM) that has minimal intermediate storage requirements. To include multipathing, we applied an imaging condition for prestack RTM that uses multiple excitation image times. Instead of saving the full-source snapshots at all time steps, we picked and saved only a few of the highest amplitude arrivals, and their corresponding excitation times, of the source wavefield at each grid point, and we crosscorrelated with the receiver wavefield. When extracting the ADCIGs from RTM, we calculated the source propagation direction from the gradient of the excitation times. The result was that the source time snapshots do not have to be saved or reconstructed during RTM or while extracting ADCIGs. We calculated the receiver propagation direction from Poynting vectors during the receiver extrapolation at each time step and the reflector normal direction by the phase-gradient method. With a new strategy that uses three direction vectors (the source and receiver propagation directions as well as the reflector normal direction), we provided more reliable ADCIGs that are free of low-wavenumber artifacts than any two of them do separately, when the migration velocity model was near to the correct velocity model. The 2D and 3D synthetic tests demonstrated the successful application of the new algorithms with acceptable accuracy, improved storage efficiency, and without an input/output bottleneck.
机译:我们已经开发了一种从叠前逆时偏移(RTM)提取角度域共同图像集合(ADCIG)的新方法,该方法具有最小的中间存储需求。为了包括多路径,我们为使用多个激发图像时间的叠前RTM应用了成像条件。我们没有在所有时间步长保存全源快照,而是只选择并保存了每个网格点源波场的几个最高振幅到达及其相应的激发时间,并且我们与接收器波场互相关。当从RTM提取ADCIG时,我们根据激励时间的梯度来计算源传播方向。结果是在RTM期间或提取ADCIG时不必保存或重建源时间快照。我们通过相位梯度法根据每个时间步外推接收器时的坡印廷矢量和反射器法向来计算接收器传播方向。通过使用三个方向矢量(源和接收器的传播方向以及反射器法线方向)的新策略,当迁移速度较高时,我们提供了比其中任意两个信号更可靠的,没有低波数伪影的ADCIG。模型接近正确的速度模型。 2D和3D综合测试证明了新算法的成功应用,具有可接受的精度,改进的存储效率,并且没有输入/输出瓶颈。

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