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首页> 外文期刊>Journal of Applied Geophysics >Deblending of simultaneous-source data using iterative seislet frame thresholding based on a robust slope estimation
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Deblending of simultaneous-source data using iterative seislet frame thresholding based on a robust slope estimation

机译:基于鲁棒斜率估计,使用迭代Seislet帧阈值偏移的同时源数据的脱模

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摘要

In a simultaneous source survey, no limitation is required for the shot scheduling of nearby sources and thus a huge acquisition efficiency can be obtained but at the same time making the recorded seismic data contaminated by strong blending interference. In this paper, we propose a multi-dip seislet frame based sparse inversion algorithm to iteratively separate simultaneous sources. We overcome two inherent drawbacks of traditional seislet transform. For the multi-dip problem, we propose to apply a multi-dip seislet frame thresholding strategy instead of the traditional seislet transform for deblending simultaneous-source data that contains multiple dips, e.g., containing multiple reflections. The multi-dip seislet frame strategy solves the conflicting dip problem that degrades the performance of the traditional seislet transform. For the noise issue, we propose to use a robust dip estimation algorithm that is based on velocity-slope transformation. Instead of calculating the local slope directly using the plane-wave destruction (PWD) based method, we first apply NMO-based velocity analysis and obtain NMO velocities for multi-dip components that correspond to multiples of different orders, then a fairly accurate slope estimation can be obtained using the velocity-slope conversion equation. An iterative deblending framework is given and validated through a comprehensive analysis over both numerical synthetic and field data examples. (C) 2018 Elsevier B.V. All rights reserved.
机译:在同时进行源调查中,附近来源的镜头调度不需要限制,因此可以获得巨大的采集效率,但同时使通过强烈混合干扰污染的记录的地震数据。在本文中,我们提出了一种基于多DIP Seislet帧的稀疏反转算法,以迭代地分离同时源。我们克服了传统的Seislet变换的两个固有缺点。对于多DIP问题,我们建议应用多DIP SEISLET帧阈值策略而不是传统的SEISLET变换,用于脱模的同时源数据,其中包含多个DIPS,例如包含多个反射。多DIP SEISLET帧策略解决了突出的DIP问题,这会降低传统的SEISLET变换的性能。对于噪声问题,我们建议使用基于速度斜率变换的强大DIP估计算法。我们首先使用基于平面波破坏(PWD)的方法直接计算局部斜率(PWD)的方法,而是利用基于NMO的速度分析,并获得与不同订单倍数相对应的多DIP组件的NMO速度,则相当准确的斜率估计可以使用速度斜率转换方程获得。通过对两个数值合成和现场数据示例的综合分析给出并验证了迭代脱模框架。 (c)2018 Elsevier B.v.保留所有权利。

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