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Least-squares reverse time migration with Radon preconditioning

机译:用氡预处理的最小二乘反向时间迁移

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We present a least-squares reverse time migration (LSRTM) method using Radon preconditioning to regularize noisy or severely undersampled data. A high resolution local radon transform is used as a change of basis for the reflectivity and sparseness constraints are applied to the inverted reflectivity in the transform domain. This reflects the prior that for each location of the subsurface the number of geological dips is limited. The forward and the adjoint mapping of the reflectivity to the local Radon domain and back are done through 3D Fourier-based discrete Radon transform operators. The sparseness is enforced by applying weights to the Radon domain components which either vary with the amplitudes of the local dips or are thresholded at given quantiles. Numerical tests on synthetic and field data validate the effectiveness of the proposed approach in producing images with improved SNR and reduced aliasing artifacts when compared with standard RTM or LSRTM.
机译:我们使用Radon预处理呈现了最小二乘反向时间迁移(LSRTM)方法,以规则噪声或严重缺口数据。高分辨率本地氡变换用作反射率的基础变化,并将稀疏约束应用于变换域中的倒反射率。这反映了对地下的每个位置的之前的地质蘸数有限。通过基于3D傅里叶的离散氡变换运算符来完成向本地氡域和后退反射率的向前和伴随映射。通过向氡域分量施加重量来强制执行稀疏性,所述氡域分量随着局部倾斜的幅度而变化,或者在给定量程处阈值。与标准RTM或LSRTM相比,合成和现场数据对合成和现场数据的数值测试验证了所提出的方法在产生具有改进的SNR的图像中的兴奋和减少叠种伪像。

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