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Development of regularization methods on simulated ground-penetrating radar signals to predict thin asphalt overlay thickness

机译:开发模拟地面穿透雷达信号的正则化方法以预测薄沥青覆盖层厚度

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摘要

The range resolution of ground-penetrating radar (GPR) signal is important in thin asphalt overlay thickness estimation. In this paper, regularized deconvolution is utilized to analyze simulated GPR signals to increase their range resolution. Four types of regularization methods, including Tikhonov regularization and total variation, were applied on noisy GPR signals; and their performance was evaluated in terms of accuracy in estimating distance of close impulses. The L-curve method was used to choose the appropriate regularization parameter. The total variation regularization method and zeroth-order Tikhonov regularization outperform first-order and second-order Tikhonov regularization in terms of average asphalt layer thickness estimation error and the standard deviation of the error. An example of the field GPR data is provided to validate the proposed algorithm. The study shows that the algorithm based on regularization is a simple and effective approach to increase the GPR signal range resolution with presence of noise in the case of thin asphalt overlay thickness prediction.
机译:探地雷达(GPR)信号的距离分辨率在薄沥青覆盖层厚度估算中很重要。在本文中,正则解卷积用于分析模拟的GPR信号以提高其距离分辨率。四种类型的正则化方法,包括Tikhonov正则化和总方差,已应用于有噪声的GPR信号。并根据估算近距离脉冲距离的准确性对它们的性能进行了评估。使用L曲线方法选择适当的正则化参数。就平均沥青层厚度估计误差和误差的标准偏差而言,总变化正则化方法和零阶Tikhonov正则化优于一阶和二阶Tikhonov正则化。提供了现场GPR数据的示例来验证所提出的算法。研究表明,在薄沥青覆盖层厚度预测的情况下,基于正则化的算法是一种在噪声存在的情况下提高GPR信号范围分辨率的简单有效的方法。

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