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Curvelet-Based Noise Attenuation in Prestack Seismic Data

机译:叠前地震数据中基于曲线的噪声衰减

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摘要

The seismic signal components depicting the underlying geology are usually corrupted by the noise components in field data. To obtain the high quality seismic records, geophysicists have to attenuate noise in prestack data. But the corruption of seismic signal components by the noise attenuation processing is unavoidable. Thus attenuating the undesirable noise components with minimal damage to the geologic signal is very important in seismic data processing. The curvelet transform developed recently is greatly suitable for seismic data processing, because the curvelets are little plane waves with enough spatial and frequency localization, complete with optimal sparsity. In this paper, we explore an effective noise attenuation approach based on curvelet transform. Applying this method to a synthetic data set and to a field data set shows that the curvelet-based approach outperforms the traditional method in noise attenuation with minimal impact on the desirable signal components.
机译:描绘底层地质的地震信号分量通常由现场数据中的噪声分量损坏。为了获得高质量的地震记录,地球物理学家必须在Prestack数据中衰减噪声。但是噪声衰减处理的地震信号分量的腐败是不可避免的。因此,在地震数据处理中衰减对地质信号的损坏最小的不良噪声分量非常重要。最近开发的Curvelet变换非常适合地震数据处理,因为曲线是具有足够空间和频率定位的平面波,具有最佳的稀疏性。在本文中,我们探讨了基于Curvelet变换的有效噪声衰减方法。将该方法应用于合成数据集和字段数据集,表明Curvelet的方法优于噪声衰减中的传统方法,对所需信号分量的影响最小。

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