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Wavelet-based detection of singularities in acoustic impedances from surface seismic reflection data

机译:基于小波的地表地震反射数据声阻抗奇异性检测

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Although the passage of singularity information from acoustic impedance to seismic traces is now well understood, it remains unanswered how routine seismic processing, mode conversions, and multiple reflections can affect the singularity analysis of surface seismic data. We make theoretical investigations on the transition of singularity behaviors from acoustic impedances to surface seismic data. We also perform numerical, wavelet-based singularity analysis on an elastic synthetic data set that is processed through routine seismic processing steps (such as stacking and migration) and that contains mode conversions, multiple reflections, and other wave-equation effects. Theoretically, seismic traces can be approximated as proportional to a smoothed version of the (N+1)th derivative of acoustic impedance,where N is the vanishing moment of the seismic wavelet. This theoretical approach forms the basis of linking singularity exponents (Holder exponents) in acoustic impedance with those computable from seismic data. By using wavelet-based multiscale analysis with complex Morlet wavelets, we can estimate singularity strengths and localities in subsurface impedance directly from surface seismic data. Our results indicate that rich singularity information in acoustic impedance variations can be preserved by surface seismic data despite data-acquisition and processing activities. We also show that high-resolution detection of singularities from real surface seismic data can be achieved with a proper choice of the scale of the mother wavelet in the wavelet transform. Singularity detection from surface seismic data thus can play a key role in stratigraphic analysis and acoustic impedance inversion.
机译:尽管现在已经很好地理解了奇异性信息从声阻抗到地震迹线的传递,但仍无法解决常规地震处理,模式转换和多次反射如何影响地表地震数据奇异性分析的问题。我们对奇异行为从声阻抗到表面地震数据的过渡进行了理论研究。我们还对通过常规地震处理步骤(例如叠加和偏移)处理的弹性合成数据集执行基于小波的数值奇异性分析,其中包含模式转换,多次反射和其他波方程效应。从理论上讲,地震道可以近似与声阻抗的第(N + 1)个导数的平滑形式成比例,其中N是地震子波的消失矩。这种理论方法构成了将声阻抗中的奇异指数(Holder指数)与可根据地震数据计算得到的指数联系起来的基础。通过使用基于小波的多尺度分析和复杂的Morlet小波,我们可以直接从地表地震数据中估计地下阻抗的奇异强度和局部性。我们的结果表明,尽管有数据采集和处理活动,但声阻抗变化中的丰富奇异信息仍可以通过地表地震数据得以保留。我们还表明,通过在小波变换中适当选择母子波的尺度,可以实现从实际表面地震数据中进行奇异点的高分辨率检测。因此,从地表地震数据中进行奇异性检测可以在地层分析和声阻抗反演中发挥关键作用。

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