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An overview of a highly versatile forward and stable inverse algorithm for airborne, ground-based and borehole electromagnetic and electric data

机译:机载,地面和井下电磁和电数据的高度通用的正向和稳定逆算法概述

摘要

We present an overview of a mature, robust and general algorithm providing a single framework for the inversion of most electromagnetic and electrical data types and instrument geometries. The implementation mainly uses a 1D earth formulation for electromagnetics and magnetic resonance sounding (MRS) responses, while the geoelectric responses are both 1D and 2D and the sheet's response models a 3D conductive sheet in a conductive host with an overburden of varying thickness and resistivity. In all cases, the focus is placed on delivering full system forward modelling across all supported types of data. Our implementation is modular, meaning that the bulk of the algorithm is independent of data type, making it easy to add support for new types. Having implemented forward response routines and file I/O for a given data type provides access to a robust and general inversion engine. This engine includes support for mixed data types, arbitrary model parameter constraints, integration of prior information and calculation of both model parameter sensitivity analysis and depth of investigation. We present a review of our implementation and methodology and show four different examples illustrating the versatility of the algorithm. The first example is a laterally constrained joint inversion (LCI) of surface time domain induced polarisation (TDIP) data and borehole TDIP data. The second example shows a spatially constrained inversion (SCI) of airborne transient electromagnetic (AEM) data. The third example is an inversion and sensitivity analysis of MRS data, where the electrical structure is constrained with AEM data. The fourth example is an inversion of AEM data, where the model is described by a 3D sheet in a layered conductive host.
机译:我们概述了一种成熟,健壮和通用的算法,为大多数电磁和电气数据类型以及仪器的几何结构的反演提供了一个单一的框架。该实现主要使用一维地球配方来实现电磁和磁共振测深(MRS)响应,而地电响应既是一维又是2D响应,并且板的响应模拟了导电主体中的3D导电板,其上覆层的厚度和电阻率各不相同。在所有情况下,重点都放在为所有支持的数据类型提供完整的系统正向建模上。我们的实现是模块化的,这意味着该算法的大部分独立于数据类型,从而可以轻松添加对新类型的支持。对于给定的数据类型,已经实现了前向响应例程和文件I / O,可以访问健壮且通用的反转引擎。该引擎包括对混合数据类型,任意模型参数约束,先验信息的集成以及模型参数敏感性分析和调查深度的计算的支持。我们将介绍我们的实现和方法,并显示四个不同的示例,说明该算法的多功能性。第一个示例是表面时域感应极化(TDIP)数据和井筒TDIP数据的横向约束联合反演(LCI)。第二个示例显示了机载瞬变电磁(AEM)数据的空间约束反演(SCI)。第三个示例是MRS数据的反演和敏感性分析,其中电气结构受AEM数据约束。第四个示例是AEM数据的反演,其中模型由分层的导电主体中的3D图纸描述。

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