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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >A combined Wigner-Ville and maximum entropy method for high-resolution time-frequency analysis of seismic data
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A combined Wigner-Ville and maximum entropy method for high-resolution time-frequency analysis of seismic data

机译:Wigner-Ville和最大熵的组合方法用于地震数据的高分辨率时频分析

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摘要

The variation of frequency content of a seismic trace with time carries information about the properties of the subsurface reflectivity sequence. As a result, analysis of the data in terms of the local frequency content can provide a worthwhile addition to the standard procedures that are used in seismic processing and seismostratigraphic interpretation. The theory of quadratic time-frequency (TF) representations, such as theWigner-Ville distribution (WVD), provides a solid foundation for local frequency analysis of seismic data and seismic attribute extraction. However, because of its quadratic nature, the WVD processes cross terms, which can limit the readability of the decomposition. To overcome this problem, we have used the key idea of the maximum entropy method of Burg, to compute a prediction error operator associated with the power spectrum of a given signal. The operator was then used to extend the kernel of Wigner-Ville of the signal, given by the elements of its covariance matrix. The Fourier transform of the extended kernel provided a high-resolution maximum entropy power spectrum of Wigner-Ville. We found, from the framework of the proposed method, how the common seismic attributes can be extracted as characteristics of the local spectrum. Furthermore, we devised a formula to estimate a robust and stable average instantaneous frequency (AIF) in the time domain. The high resolution achieved in the TF domain has been a key aspect for applying the proposed method to the Gulf of Mexico data set. Mapping of the channels and infill lithology is made possible by analyzing the spectral variation of the AIF cube, and the spectral decomposition based on the proposed method allows reliable information on the probable location and extension of a gas reservoir.
机译:地震道的频率含量随时间的变化会携带有关地下反射率序列属性的信息。结果,就本地频率内容而言,数据分析可以为地震处理和地震地层解释中使用的标准程序提供有价值的补充。诸如Wigner-Ville分布(WVD)之类的二次时频(TF)表示理论为地震数据的局部频率分析和地震属性提取提供了坚实的基础。但是,由于WVD具有二次性质,因此它会处理交叉项,这会限制分解的可读性。为了克服这个问题,我们使用了Burg最大熵方法的关键思想,来计算与给定信号功率谱相关的预测误差算子。然后,使用运算符来扩展信号的Wigner-Ville的内核,这由其协方差矩阵的元素给出。扩展内核的傅里叶变换提供了Wigner-Ville的高分辨率最大熵功率谱。我们从提出的方法的框架中发现,如何将共同的地震属性提取为局部频谱的特征。此外,我们设计了一个公式来估算时域中的稳健且稳定的平均瞬时频率(AIF)。在TF域中实现的高分辨率一直是将建议的方法应用于墨西哥湾数据集的关键方面。通过分析AIF立方体的光谱变化,可以绘制通道和填充岩性,并且基于所提出方法的光谱分解可以提供有关气藏可能位置和扩展的可靠信息。

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