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Pareto Joint Inversion of 2D magnetometric and gravity data- synthetic study

机译:二维磁力和重力数据的帕累托联合反演-综合研究

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Pareto joint inversion for two or more data sets is an attractive and promising tool which eliminates target functions weighing and scaling, providing a set of acceptable solutions composing a Pareto front. In former author’s study MARIA (Modular Approach Robust Inversion Algorithm) was created as a flexible software based on global optimization engine (PSO) to obtain model parameters in process of Pareto joint inversion of two geophysical data sets. 2D magnetotelluric and gravity data were used for preliminary tests, but the software is ready to handle data from more than two geophysical methods. In this contribution, the authors’ magnetometric forward solver was implemented and integrated with MARIA. The gravity and magnetometry forward solver was verified on synthetic models. The tests were performed for different models of a dyke and showed, that even when the starting model is a homogeneous area without anomaly, it is possible to recover the shape of a small detail of the real model. Results showed that the group analysis of models on the Pareto front gives more information than the single best model. The final stage of interpretation is the raster map of Pareto front solutions analysis.
机译:用于两个或更多数据集的帕累托联合反演是一种有吸引力且有前途的工具,它消除了目标函数的权衡和缩放,提供了组成帕累托前沿的一组可接受的解决方案。在前作者的研究中,MARIA(模块化方法鲁棒反演算法)是作为基于全局优化引擎(PSO)的灵活软件而创建的,用于在两个地球物理数据集的帕累托联合反演过程中获得模型参数。二维大地电磁和重力数据用于初步测试,但该软件已准备就绪,可以处理来自两种以上地球物理方法的数据。在此贡献中,作者的磁力正向求解器已实现并与MARIA集成。在合成模型上验证了重力和磁力正解器。对堤坝的不同模型进行了测试,结果表明,即使起始模型是没有异常的均质区域,也可以恢复实际模型的小细节的形状。结果表明,帕累托前沿模型的分组分析比单个最佳模型能提供更多的信息。解释的最后阶段是帕累托前沿解分析的栅格地图。

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