Advanced Three-Dimensional Microwave Tomography for the Imaging of Buried Targets

D. Comite, F. Murgia, A. Galli, I. Catapano, F. Soldovieri
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引用次数: 1

Abstract

The imaging of buried targets by means of Ground Penetrating Radar (GPR) surveys is typically affected by nonideal and critical operational conditions. The targets are often located in the near-field region of the illuminating antennas, having size comparable to the probing wavelengths and, thus, to the resolution limits of the considered system. In this work, we investigate the improvements obtainable in the GPR performance when the post-processing of the signals collected at the receiving system accounts for the actual near-field distribution of a directional antenna used to activate the scattering phenomenon. In contrast with more conventional implementations., which are based on a two-dimensional (2-D) scalar representation of the scattering equation., we consider here a three-dimensional (3-D) vector formulation of the scattering problem, modeling the illuminating field with the actual 3-D near-field distribution impressed by the considered antennas. Preliminary 3-D numerical reconstructions of the target are reported and discussed, paving the way for a complete performance assessment of a fully vector near-field microwave imaging with respect to the usual simplified implementations.
用于地埋目标成像的先进三维微波层析成像
通过探地雷达(GPR)测量对埋地目标的成像通常受到非理想和临界操作条件的影响。目标通常位于照明天线的近场区域,其尺寸与探测波长相当,因此与所考虑的系统的分辨率限制相当。在这项工作中,我们研究了当接收系统收集的信号的后处理考虑到用于激活散射现象的定向天线的实际近场分布时,探地雷达性能可以得到的改进。与更传统的实现相比。,这是基于二维(2-D)标量表示的散射方程。,我们考虑了散射问题的三维矢量公式,用考虑天线的实际三维近场分布来模拟照明场。对目标的初步三维数值重建进行了报道和讨论,为相对于通常的简化实现对全矢量近场微波成像进行完整的性能评估铺平了道路。
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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