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双相移滑动扫描谐波压制方法 被引量:2
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作者 李波霖 王彦春 +3 位作者 刘学清 张敬东 李韵竹 孙庭斌 《石油地球物理勘探》 EI CSCD 北大核心 2021年第2期265-272,I0008,I0009,共10页
纯相移谐波压制滤波法作为去除可控震源高次谐波的一种简便、高效的方法,在处理复杂信号时却对白噪声和相邻炮信号的处理能力稍显不足,因此未能投入实际应用。为了将简捷的相移法用于实际地震数据处理,提出双相移谐波压制滤波法。该方... 纯相移谐波压制滤波法作为去除可控震源高次谐波的一种简便、高效的方法,在处理复杂信号时却对白噪声和相邻炮信号的处理能力稍显不足,因此未能投入实际应用。为了将简捷的相移法用于实际地震数据处理,提出双相移谐波压制滤波法。该方法在对纯相移法原有相移曲线进行微调和润色的同时,针对纯相移法无法处理的这部分信号再进行一次相移。使用模型信号对比了纯相移法与双相移法谐波压制效果,验证了双相移法抗噪方面的优势。将双相移法应用于滑动扫描信号并分析其使用条件,分析对于不同起止扫描频率信号的适用性。考虑到实际地震数据往往由各种强弱不等的反射组成,建立地下多次反射模型,同时考虑更偏向实际情况的信号起止频率比,讨论双相移法的适用性。将该方法应用于实际数据处理,并与纯相移法进行比较,结果表明双相移法谐波滤除效果更好,具有一定的推广价值。 展开更多
关键词 双相移法 谐波畸变 谐波消除 滑动扫描 可控震源
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Double-phase-shift filtering method for harmonic elimination based on AR2U-Net
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作者 Li Bo-Lin Wang Yan-Chun +1 位作者 Yuan Hang Liu Xue-Qing 《Applied Geophysics》 SCIE CSCD 2022年第2期271-283,309,共14页
The double-phase-shift filtering method,which is based on the traditional purephase-shift filtering method,is a novel approach to harmonic elimination that can be applied to more complicated signals such as white nois... The double-phase-shift filtering method,which is based on the traditional purephase-shift filtering method,is a novel approach to harmonic elimination that can be applied to more complicated signals such as white noise and slip-sweep.Nonetheless,any type of phase-shift filtering method necessitates a relationship between the frequency of fundamental sweep and time,which may cost necessitate an enormous amount of human and physical resources to achieve inaccurate results with low efficiency.This paper combines deep learning with harmonic elimination to produce a double-phase-shift filtering method based on AR2UNet,a type of U-Net with attention gates structure and recurrent residual blocks for improving accuracy and function while simplifying computational complexity.The input of the AR2UNet structure in this paper is seismic data of slip-sweep signals in vibroseis,and the output is signal frequency variation with the time of the fundamental waves,which are required to eliminate the harmonic waves and adjacent signals using a double-phase-shift method to obtain the fundamental sweep.The training sets and test sets are formed by forward models,and a Log-Cosh loss function is used to monitor the process,during which the results of AR2U-Net and traditional U-Net are compared to demonstrate the eminent function of AR2UNet.Following that,the outcomes’Log-Cosh loss functions and accuracy are also compared to validate the conclusion.AR2U-Net,when applied to raw data and combined with the doublephase-shift method,tends to polish the filtering effects and is worth promoting. 展开更多
关键词 AR2U-Net harmonic elimination double-phase-shifts deep learning VIBROSEIS
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