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Seismic random noise attenuation using modified wavelet thresholding

机译:使用改进的小波阈值处理地震随机噪声衰减

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摘要

In seismic exploration, random noise deteriorates the quality of acquired data. This study analyzed existing denoising methods used in seismic exploration from the perspective of random noise. Wavelet thresholding offers a new approach to reducing random noise in simulation results, synthetic data, and real data. A modified wavelet threshold function was developed by considering the merits and demerits of conventional soft and hard thresholding schemes. A MATLAB (matrix laboratory) simulation model was used to compare the signal-to-noise ratios (SNRs) and mean square errors (MSEs) of the soft, hard, and modified threshold functions. The results demonstrated that the modified threshold function can avoid the pseudo-Gibbs phenomenon and produce a higher SNR than the soft and hard threshold functions. A seismic convolution model was built using seismic wavelets to verify the effectiveness of different denoising methods. The model was used to demonstrate that the modified thresholding scheme can effectively reduce random noise in seismic data and retain the desired signal. The application of the proposed tool to a real raw seismogram recorded during a land seismic exploration experiment located in north China clearly demonstrated its efficiency for random noise attenuation.
机译:在地震勘探中,随机噪声恶化了获取数据的质量。本研究分析了从随机噪声的角度分析了地震勘探中的现有去噪方法。小波阈值处理提供了一种在仿真结果,合成数据和实际数据中减少随机噪声的新方法。通过考虑传统的软和硬阈值方案的优点和缺点来开发改进的小波阈值函数。 MATLAB(MATRIX实验室)仿真模型用于比较软,硬质和修改阈值的信噪比(SNR)和均方误差(MSES)。结果表明,改进的阈值函数可以避免伪GIBB现象并产生比软和硬阈值函数更高的SNR。利用地震小波构建地震卷积模型,以验证不同去噪方法的有效性。该模型用于证明修改的阈值方案可以有效地降低地震数据中的随机噪声并保留所需的信号。所拟议的工具在位于华北地震勘探实验期间记录的实际原始地震图的应用明显证明了其随机噪声衰减的效率。

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