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Estimating Observation Error Covariance Matrix of Seismic Data from a Perspective of Image Processing

机译:从图像处理的角度估计地震数据的观察误差协方差矩阵

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Estimating observation error covariance matrix properly is a key towards successful seismic history matching. Observation errors of seismic data are usually correlated, therefore the observation error covariance matrix is non-diagonal Estimating such a non-diagonal covariance matrix is the focus of the current study. We decompose the estimation into two steps: (1) estimate observation errors; and (2) construct covariance matrix based on the estimated observation errors Our focus is on step (1), whereas at step (2) we use a procedure similar to that in Aanonsen et al., 2003. In Aanonsen et al., 2003, step (1) is carried out using a local moving average algorithm. By treating seismic data as an image, this algorithm can be interpreted as a discrete convolution between an image and a rectangular window function. Following the perspective of image processing, we consider three types of image denoising methods, namely, local moving average with different window functions (as an extension of the method in Aanonsen et al., 2003). non-local means denoising and wavelet denoising. The performance of these three algorithms is compared using both synthetic and field seismic data, and it is found that the wavelet denoising method leads to the best performance in our investigated cases.
机译:估计观察错误协方差矩阵正确是成功地震历史匹配的关键。地震数据的观察误差通常是相关的,因此观察误差协方差矩阵是非对角线估计这种非对角线协方差矩阵是当前研究的焦点。我们将估计分解为两个步骤:(1)估计观察误差; (2)构建基于估计观察误差的协方差矩阵我们的重点是步骤(1),而在步骤(2),我们使用类似于Aanonsen等,2003年的程序。在Aanonsen等,2003年,2003年,步骤(1)使用局部移动的平均算法进行。通过将地震数据视为图像,该算法可以被解释为图像和矩形窗口函数之间的离散卷积。在图像处理的角度下,我们考虑三种类型的图像去噪方法,即局部移动平均值,具有不同的窗口功能(作为Aanonsen等,2003中的方法的扩展。非本地意味着去噪和小波去噪。使用合成和场地震数据进行比较这三种算法的性能,发现小波去噪方法导致我们的研究病例中的最佳性能。

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