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Noise suppressing and direct wave removal in GPR data based on shearlet transform

机译:基于Shearlet变换的GPR数据中噪声抑制和直接波去除

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Ground penetrating radar (GPR) is often used to detect buried objects and evaluate structural condition. However, the direct wave and random noise often influence the arrival-time detection and the target-position location. We present a new application of Shearlet transform (ShT) to GPR data processing for direct wave removal and random noise suppression. ShT is a non-adaptive geometric-analysis technique, which has the properties of multi-directions and multi-scale, so it can show the optimal representations of signals in higher dimensions. The original GPR data is transformed to the ShT domain. The direct wave and the remaining GPR signal are effectively separated. While we eliminate the direct wave, the GPR signal is not damaged. The Shearlet coefficients of the GPR signal are relatively large, whereas random noises are relatively small. So we can use the threshold algorithm depending on different scales and directions in the ShT domain to suppress random noise. The GPR signal can be preserved very well and SNR is enhanced.
机译:地面穿透雷达(GPR)通常用于检测埋地物体并评估结构条件。然而,直接波和随机噪声通常会影响到达时间检测和目标位置位置。我们介绍了Shearlet变换(SHT)对GPR数据处理的新应用,用于直接波去除和随机噪声抑制。 SHT是非自适应几何分析技术,具有多向和多尺度的性质,因此它可以显示更高尺寸的信号的最佳表示。原始GPR数据转换为SHT域。直接波和剩余的GPR信号有效地分开。虽然我们消除了直接波,但GPR信号不会损坏。 GPR信号的Shearlet系数相对较大,而随机噪声相对较小。因此,我们可以根据SHT域中的不同尺度和方向使用阈值算法来抑制随机噪声。 GPR信号可以保留很好,并且增强了SNR。

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