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首页> 外文期刊>Journal of Applied Geophysics >Further improvement of temporal resolution of seismic data by autoregressive (AR) spectral extrapolation
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Further improvement of temporal resolution of seismic data by autoregressive (AR) spectral extrapolation

机译:通过自回归(AR)频谱外推法进一步改善地震数据的时间分辨率

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Seismic data have still no enough temporal resolution because of band-limited nature of available data even if it is deconvolved. However, lower and higher frequency information belonging to seismic data is missing and it is not directly recovered from seismic data. In this paper, a method originally applied by Honarvar et al. [Honarvar, F., Sheikhzadeh, H., Moles, M., Sinclair, A.N, 2004. Improving the time-resolution and signal-noise ratio of ultrasonic NDE signals. Ultrasonics 41, 755-763.] which is the combination of the most widely used Wiener deconvolution and AR spectral extrapolation in frequency domain is briefly reviewed and is applied to seismic data to improve temporal resolution further. The missing frequency information is optimally recovered by forward and backward extrapolation based on the selection of a high signal-noise ratio (SNR) of signal spectrum deconvolved in signal processing technique. The combination of the two methods is firstly tested on a variety of synthetic examples and then applied to a stacked real trace. The selection of necessary parameters in Wiener filtering and in extrapolation are discussed in detail. It is used an optimum frequency windows between 3 and 10 dB drops by comparing results from these drops, while frequency windows are used as standard between 2.8 and 3.2 dB drops in study of Honarvar et al. [Honarvar, F., Sheikhzadeh, H., Moles, M., Sinclair, A.N, 2004. Improving the time-resolution and signal-noise ratio of ultrasonic NDE signals. Ultrasonics 41, 755-763.]. The results obtained show that the application of the purposed signal processing technique considerably improves temporal resolution of seismic data when compared with the original seismic data. Furthermore, AR based spectral extrapolated data can be almost considered as reflectivity sequence of layered medium. Consequently, the combination of Wiener deconvolution and AR spectral extrapolation can reveal some details of seismic data that cannot be observed in raw signal or which lost during the previous processing. (C) 2005 Elsevier B.V. All rights reserved.
机译:由于可用数据的频带有限性质,即使对地震数据进行了反卷积,地震数据仍然没有足够的时间分辨率。但是,属于地震数据的低频和高频信息丢失了,并且不能直接从地震数据中恢复。在本文中,Honarvar等人最初采用了一种方法。 [Honarvar,F.,Sheikhzadeh,H.,Moles,M.,Sinclair,A.N,2004。提高超声NDE信号的时间分辨率和信噪比。简要回顾了超声学41(755-763。),它是频域中使用最广泛的维纳反卷积和AR频谱外推法的组合,并将其应用于地震数据以进一步改善时间分辨率。基于对信号处理技术中解卷积的信号频谱的高信噪比(SNR)的选择,通过正向和反向外推可以最佳地恢复丢失的频率信息。两种方法的组合首先在各种合成示例上进行测试,然后应用于堆叠的真实迹线。详细讨论了维纳滤波和外推中必需参数的选择。通过比较这些下降的结果,可以使用在3至10 dB下降之间的最佳频率窗口,而Honarvar等人的研究则将频率窗口用作2.8至3.2 dB下降之间的标准。 [Honarvar,F.,Sheikhzadeh,H.,Moles,M.,Sinclair,A.N,2004。提高超声NDE信号的时间分辨率和信噪比。超声41,755-763。]。所得结果表明,与原始地震数据相比,有目的信号处理技术的应用大大提高了地震数据的时间分辨率。此外,基于AR的光谱外推数据几乎可以视为分层介质的反射率序列。因此,维纳反卷积和AR频谱外推的结合可以揭示一些地震数据的细节,这些细节在原始信号中无法观察到,或者在先前的处理过程中会丢失。 (C)2005 Elsevier B.V.保留所有权利。

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