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Fast iterative adaptive approach for 3D seismic data reconstruction

机译:3D地震数据重建的快速迭代自适应方法

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In this paper, we introduce a fast iterative adaptive approach for the reconstruction of 3D seismic data with randomly missing traces. Our method starts by transforming 3D seismic volume to 2D harmonic signal for each frequency slice, and then the power spectrum of the frequency slice is iteratively estimated by a weighted least square fitting criterion. The missing data can be recovered with the obtained spectral estimate using a linear minimum mean-squared error estimator. However, estimation of the power spectrum depends on matrix-vector multiplications for each iteration that leads to high computation complexity when the data are large scale and high dimension. To solve the associated spectrum estimation problem above, a fast iterative adaptive scheme is adopted by utilising 2D fast discrete Fourier transform, which makes use of the block-Vandermonde structure and the 2D Fourier property of the steering matrix. Simulation experiments on synthetic and field data verify the effectiveness of the proposed algorithm. Compared with other reconstruction methods based on frequency slice, such as minimum-weighted norm interpolation approach, multi-channel singular spectrum analysis, and Curvelet transform method, the proposed method achieves better reconstruction performance and low computational complexity.
机译:在本文中,我们介绍了一种快速迭代的自适应方法,用于随机缺失痕迹重建3D地震数据。我们的方法通过将3D地震体积转换为每个频率切片的3D地震体积到2D谐波信号,然后通过加权最小二乘拟合标准迭代地估计频谱的功率谱。可以使用线性最小平均平方误差估计器使用所获得的光谱估计来恢复缺失的数据。然而,功率谱的估计取决于当数据是大规模和高维时导致高计算复杂性的每次迭代的矩阵 - 矢量乘法。为了解决上面的相关频谱估计问题,通过利用2D快速离散的傅里叶变换来采用快速迭代自适应方案,这是使用块 - Vandermonde结构和转向矩阵的2D傅立叶属性。仿真实验对合成和现场数据验证了所提出的算法的有效性。与基于频率切片的其他重建方法相比,如最小加权规范插值方法,多通道奇异频谱分析和Curvelet变换方法,所提出的方法实现了更好的重建性能和低计算复杂性。

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