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Two-dimensional and three-dimensional NUFFT migration method for landmine detection using ground-penetrating Radar

机译:利用探地雷达探测二维和三维NUFFT迁移方法

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Ground-penetrating radar (GPR) has been widely used for landmine detection due to its high signal-to-noise ratio (SNR) and superior ability to image nonmetallic landmines. Processing GPR data to obtain better target images and to assist further object detection has been an active research area. Phase-shift migration is a widely used method; however, its wavenumber space is nonuniformly sampled because of the nonlinear relationship between the uniform frequency samples and the wavenumbers. Conventional methods use linear interpolation to obtain uniform wavenumber samples and compute the fast Fourier transform (FFT). This paper develops two- and three-dimensional migration methods that process GPR data to obtain images close to the actual target geometries using a nonuniform fast Fourier transform (NUFFT) algorithm. The proposed method is first compared to the conventional migration approaches on simulated data and then applied to landmine field data sets. Results suggest that the NUFFT migration method is useful in focusing images, estimating landmine structure, and retaining relatively high signal-to-noise ratio in the migrated data. The processed data sets are then fed to the normalized energy and least-mean-square-based anomaly detectors. Receiver operating characteristic curves of data sets processed by different migration methods are compared. The NUFFT migration shows potential improvements on both classifiers with a reduced false alarm rate at most probabilities of detection.
机译:探地雷达(GPR)由于其高的信噪比(SNR)和出色的非金属地雷成像能力而被广泛用于地雷探测。处理GPR数据以获得更好的目标图像并协助进一步的目标检测一直是活跃的研究领域。相移迁移是一种广泛使用的方法。但是,由于均匀频率样本与波数之间存在非线性关系,因此无法对波数空间进行均匀采样。常规方法使用线性插值来获取均匀波数样本并计算快速傅里叶变换(FFT)。本文开发了二维和三维迁移方法,该方法使用非均匀快速傅里叶变换(NUFFT)算法处理GPR数据以获得接近实际目标几何形状的图像。首先将该方法与传统的模拟数据迁移方法进行比较,然后将其应用于地雷现场数据集。结果表明,NUFFT迁移方法可用于聚焦图像,估计地雷结构并在迁移的数据中保留相对较高的信噪比。然后将处理后的数据集馈送到归一化能量和基于最小均方的异常检测器。比较了通过不同迁移方法处理的数据集的接收器工作特性曲线。 NUFFT迁移显示了在两个分类器上的潜在改进,在大多数检测概率下,误报率降低了。

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