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Fundamental Analyses on Layered Media Reconstruction Using GPR and Full-Wave Inversion in Near-Field Conditions

机译:在近场条件下使用GPR和全波反演进行分层媒体重构的基础分析

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Multifrequency and multioffset ground-penetrating radar data acquisition modes are used to maximize the information content and parameter retrieval capabilities. However, they also increase the computational cost dedicated to the inversion procedure. In this paper, the impact of the number of frequencies and the multistatic configurations on the information retrieval capabilities is investigated through the response surface topographies of the objective functions. We resort to a full-wave-inversion procedure and a recently developed electromagnetic model which takes advantage of a closed-form solution of Maxwell's equations to describe the antenna–medium system. We show with numerical and laboratory experiments the possibility of reducing the number of frequencies from several hundreds to one or several tens of components without affecting the information retrieval capabilities. We also show through several scenarios that the presence of a perfect electrical conductor increases the number of frequencies required to ensure an acceptable retrieval of the subsurface properties whereas the conductivity of the first layer and the relative permittivity of the second layer do not affect it. The results highlight that information content analyses are important in order to study and optimize data acquisition and inversion procedures, and thereby the computation time.
机译:多频和多偏移穿透地面的雷达数据采集模式用于最大化信息内容和参数检索能力。然而,它们也增加了专用于反演过程的计算成本。本文通过目标函数的响应面拓扑研究了频率数量和多静态配置对信息检索能力的影响。我们采用全波反演程序和最近开发的电磁模型,该模型利用麦克斯韦方程的闭式解来描述天线-介质系统。我们通过数值和实验室实验证明了在不影响信息检索能力的情况下将频率数量从数百个减少到一个或几十个分量的可能性。我们还通过几种情况表明,完美导电体的存在增加了确保可接受的地下性质恢复所需的频率数量,而第一层的电导率和第二层的相对介电常数并不影响它。结果表明,信息内容分析对于研究和优化数据采集和反演程序以及计算时间非常重要。

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