A Full Waveforminversion Algorithm for Interpreting Crosshole Radar Data

S. Kuroda, M. Takeuchi, H. Kim
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引用次数: 7

Abstract

Ground-penetrating radar (GPR) is a useful tool for civil and environmental engineering fields because of its high resolving power and non-destructive measurements. This paper presents a method of full-waveform inversion of borehole GPR data for imaging permittivity structures. The inversion algorithm is based on a conjugate gradient search for the minimum of an error functional relating to the difference between measured and predicted data. A small model perturbation in the functional can be efficiently calculated by propagating the data error back into the model in reverse time and correlating the field generated by the back-propagation with the corresponding incident field at each point. A finite difference time domain (FDTD) method is used for solving Maxwell's equations to obtain incident electromag-netic wavefields. Back-propagated wavefields satisfy adjoint Maxwell's equations, which are stable in reverse time and can be solved by the same FDTD scheme. The imaging scheme is applied to crosshole radar configuration, thereby demonstrating its capability to reconstruct permittivity structures. Tests on a two-dimensional synthetic model produce good images of target scatterers and show stable convergence.
井间雷达数据全波形版本解释算法
探地雷达(GPR)以其高分辨率和无损测量等优点,成为土木工程和环境工程领域的重要工具。本文提出了一种成像介电常数结构的井内探地雷达全波形反演方法。反演算法是基于一个共轭梯度搜索最小的误差函数与测量和预测数据之间的差异。通过将数据误差反向传播到模型中,并将反向传播产生的场与每一点对应的入射场相关联,可以有效地计算出函数中的小模型扰动。采用时域有限差分法求解麦克斯韦方程组,得到入射电磁波场。反向传播波场满足伴随麦克斯韦方程组,该方程组在逆时是稳定的,可以用相同的FDTD格式求解。将该成像方案应用于井间雷达配置,从而证明了其介电常数结构的重建能力。对二维合成模型进行了测试,得到了较好的目标散射体图像,且收敛稳定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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