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A self-constrained inversion of magnetic data based on correlation method

机译:基于相关方法的磁数据自约束反演

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Geologically-constrained inversion is a powerful method for producing geologically reasonable solutions in geophysical exploration problems. But in many cases, except the observed geophysical data to be inverted, the geological information is insufficiently available for improving reliability of recovered models. To deal with these situations, self-constraints extracted from preprocessing observed data have been applied to constrain the inversion. In this paper, we present a self-constrained inversion method based on correlation method. In our approach the correlation results are first obtained by calculating the cross-correlation between theoretical data and horizontal gradients of the observed data. Subsequently, we propose two specific strategies to extract the spatial variation from the correlation results and then translate them into spatial weighting functions. Incorporating the spatial weighting functions into the model objective function, we obtain self-constrained solutions with higher reliability. We presented two synthetic and one field magnetic data example to test the validity. All results demonstrate that the solution from our self-constrained inversion can delineate the geological bodies with clearer boundaries and much more concentrated physical property. (C) 2016 Elsevier B.V. All rights reserved.
机译:地质约束反演是在地球物理勘探问题中产生地质合理解决方案的有力方法。但是在许多情况下,除了要反转的观测地球物理数据外,地质信息不足以提高恢复模型的可靠性。为了应对这些情况,已应用从预处理观测数据中提取的自约束来约束反演。在本文中,我们提出了一种基于相关方法的自约束反演方法。在我们的方法中,首先通过计算理论数据与观测数据的水平梯度之间的互相关来获得相关结果。随后,我们提出了两种具体的策略来从相关结果中提取空间变化,然后将它们转换为空间加权函数。将空间加权函数纳入模型目标函数中,我们获得了具有较高可靠性的自约束解。我们提出了两个合成的和一个磁场数据的例子来检验其有效性。所有结果表明,我们自约束反演的解可以以更清晰的边界和更集中的物理特性来描绘地质体。 (C)2016 Elsevier B.V.保留所有权利。

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