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Exploring nonlinear inversions: A 1D magnetotelluric example

机译:探索非线性反演:一维大地电磁示例

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摘要

At some point in many geophysical workflows, an inversion is a necessary step for answering the geoscientific question at hand, whether it is recovering a reflectivity series from a seismic trace in a deconvolution problem, finding a susceptibility model from magnetic data, or recovering conductivity from an electromagnetic survey. This is particularly true when working with data sets where it may not even be clear how to plot the data: 3D direct current resistivity and induced polarization surveys (it is not necessarily clear how to organize data into a pseudosection) or multicomponent data, such as electromagnetic data (we can measure three spatial components of electric and/or magnetic fields through time over a range of frequencies). Inversion is a tool for translating these data into a model we can interpret. The goal of the inversion is to find a "model" - some description of the earth's physical properties - that is consistent with both the data and geologic knowledge.
机译:在许多地球物理工作流程中的某个时刻,反演是回答当前地球科学问题的必要步骤,无论是从反褶积问题中的地震迹线中恢复反射率序列,从磁数据中找到磁化率模型还是从中恢复磁导率。电磁测量。在处理甚至可能不清楚如何绘制数据的数据集时,尤其如此:3D直流电阻率和感应极化测量(不一定清楚如何将数据组织为伪截面)或多分量数据,例如电磁数据(我们可以在一定频率范围内通过时间测量电场和/或磁场的三个空间分量)。反转是将这些数据转换成我们可以解释的模型的工具。反演的目的是找到一个“模型”,即对地球物理性质的某种描述,该模型与数据和地质知识都一致。

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  • 来源
    《The Leading Edge》 |2017年第8期|696-699|共4页
  • 作者单位

    University of British Columbia Geophysical Inversion Facility;

    University of British Columbia Geophysical Inversion Facility;

    University of British Columbia Geophysical Inversion Facility;

    University of British Columbia Geophysical Inversion Facility;

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  • 正文语种 eng
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