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首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >Monochromatic Noise Removal via Sparsity-Enabled Signal Decomposition Method
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Monochromatic Noise Removal via Sparsity-Enabled Signal Decomposition Method

机译:通过稀疏性信号分解方法消除单色噪声

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摘要

Monochromatic noise always interferes with the interpretation of the seismic signals and degrades the quality of subsurface images obtained by further processes. Conventional methods suffer from several problems in detecting the monochromatic noise automatically, preserving seismic signals, etc. In this letter, we present an algorithm that can remove all major monochromatic noises from the seismic traces in a relatively harmless way. Our separation model is set up upon the assumption that input seismic data are composed of useful seismic signals and single-frequency interferences. Based on their diverse morphologies, two waveform dictionaries are chosen to represent each component sparsely, and the separation process is promoted by the sparsity of both components in their corresponding representing dictionaries. Both synthetic and field-shot data are employed to illustrate the effectiveness of our method.
机译:单色噪声始终会干扰地震信号的解释,并降低通过进一步处理获得的地下图像的质量。常规方法在自动检测单色噪声,保留地震信号等方面存在若干问题。在这封信中,我们提出了一种算法,该算法可以以相对无害的方式从地震道中去除所有主要的单色噪声。我们的分离模型是在假设输入地震数据由有用的地震信号和单频干扰组成的前提下建立的。基于它们的不同形态,选择两个波形字典来稀疏地表示每个组件,并且两个组件在其对应的表示字典中的稀疏性促进了分离过程。综合和实地拍摄的数据都被用来说明我们方法的有效性。

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