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Moderately rough surface underground imaging via short-pulse quasi-ray Gaussian beams

机译:通过短脉冲准射线高斯光束对地下表面进行中等粗糙的成像

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摘要

An adaptive framework is presented for ultra-wideband ground penetrating radar imaging of shallow-buried low-contrast dielectric objects in the presence of a moderately rough air-soil interface. The proposed approach works with sparse data and relies on recently developed Gabor-based narrow-waisted quasi-ray Gaussian beam algorithms as fast forward scattering predictive models. First, a nonlinear inverse scattering problem is solved to estimate the unknown coarse-scale roughness profile. This sets the stage for adaptive compensation of clutter-induced distortion in the underground imaging problem, which is linearized via Born approximation and subsequently solved via various pixel-based and object-based techniques. Numerical simulations are presented to assess accuracy, robustness and computational efficiency for various calibrated ranges of problem parameters. The proposed approach has potential applications to antipersonnel land mine remediation.
机译:提出了一种适应性框架,用于在存在中度粗糙的空气-土壤界面的情况下对浅埋低对比度电介质物体进行超宽带探地雷达成像。所提出的方法适用于稀疏数据,并依赖于最近开发的基于Gabor的窄腰准射线高斯光束算法作为快速前向散射预测模型。首先,解决了非线性逆散射问题,以估计未知的粗尺度粗糙度轮廓。这为地下成像问题中的杂波引起的失真的自适应补偿奠定了基础,该问题通过Born近似线性化,随后通过各种基于像素和基于对象的技术解决。提出了数值模拟,以评估问题参数的各种校准范围的准确性,鲁棒性和计算效率。拟议的方法在杀伤人员地雷补救方面具有潜在的应用。

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