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Blended-acquisition design of irregular geometries towards faster, cheaper, safer and better seismic surveying

机译:不规则几何的混合采集设计,可实现更快,更便宜,更安全和更好的地震勘测

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摘要

The application of blended acquisition has drawn considerable attention owing to its ability to improve the operational efficiency as well as the data quality and health, safety and environment performance. Furthermore, the acquisition of less data contributes to the business aspect, while the desired data density is still realizable via subsequent data reconstruction. The use of fewer detectors and sources also minimizes operational risks in the field. Therefore, a combined implementation of these technologies potentially enhances the value of a seismic survey further. One way to encourage this is to minimize any imperfection in deblending and data reconstruction during processing. In addition, one may derive survey parameters that enable a further improvement in these processes as introduced in this study. The proposed survey design workflow iteratively performs the following steps to derive the survey parameters responsible for source blending as well as the spatial sampling of detectors and sources. The first step is the application of blending and sampling operators to unblended and well-sampled data. We then apply closed-loop deblending and data reconstruction. The residue for a given design from this step is evaluated and subsequently used by genetic algorithms to simultaneously update the survey parameters related to both blending and spatial sampling. The updated parameters are fed into the next iteration until they satisfy the given termination criteria. We also propose a repeated encoding sequence to form a parameter sequence in genetic algorithms, making the size of problem space manageable. The results of the proposed workflow are outlined using blended dispersed source array data incorporating different scenarios that represent acquisition in marine, transition zone and land environments. Clear differences attributed solely to the parameter design are easily recognizable. Additionally, a comparison among different optimization schemes illustrates the ability of genetic algorithms along with a repeated encoding sequence to find better solutions within a computationally affordable time. The optimized parameters yield a notable enhancement in the deblending and data reconstruction quality and consequently provide optimal acquisition scenarios.
机译:混合采集的应用提高了运营效率以及数据质量,健康,安全和环境性能,因此备受关注。此外,更少的数据采集有助于业务发展,而所需的数据密度仍然可以通过后续的数据重构实现。使用较少的检测器和源也可以最大程度地减少现场操作风险。因此,这些技术的组合实施有可能进一步提高地震勘测的价值。鼓励这样做的一种方法是将处理过程中混合和数据重建中的任何不完整之处最小化。另外,如本研究中所介绍的,可以得出能够进一步改善这些过程的调查参数。拟议的勘测设计工作流反复执行以下步骤,以得出负责源混合以及探测器和源的空间采样的勘测参数。第一步是将混合运算符和采样运算符应用于未混合和采样良好的数据。然后,我们应用闭环混合和数据重建。将评估此步骤中给定设计的残差,然后遗传算法将其用于同时更新与混合和空间采样有关的测量参数。更新的参数将馈入下一次迭代,直到它们满足给定的终止条件为止。我们还提出了一种重复编码序列,以在遗传算法中形成参数序列,从而使问题空间的大小易于管理。利用混合的分散源阵列数据概述了拟议的工作流程的结果,这些数据结合了代表在海洋,过渡带和陆地环境中进行采集的不同场景。仅归因于参数设计的明显差异很容易识别。此外,不同优化方案之间的比较说明了遗传算法与重复编码序列一起在计算上可承受的时间内找到更好解决方案的能力。优化的参数可显着提高去混合和数据重建的质量,从而提供最佳的采集方案。

著录项

  • 来源
    《Geophysical Prospecting》 |2019年第6期|1498-1521|共24页
  • 作者单位

    Delft Univ Technol, Mekelweg 5, NL-2628 CD Delft, Netherlands|INPEX Corp, Minato Ku, Akasaka Biz Tower,5-3-1 Akasaka, Tokyo 1076332, Japan;

    Delft Univ Technol, Mekelweg 5, NL-2628 CD Delft, Netherlands;

    INPEX Corp, Minato Ku, Akasaka Biz Tower,5-3-1 Akasaka, Tokyo 1076332, Japan|ADNOC Res & Innovat Ctr, Abu Dhabi, U Arab Emirates;

    INPEX Corp, Minato Ku, Akasaka Biz Tower,5-3-1 Akasaka, Tokyo 1076332, Japan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Seismic acquisition; Sampling; Iterative scheme;

    机译:地震采集;采样;迭代方案;

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