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首页> 外文期刊>Journal of Applied Geophysics >Automatic detection of buried utilities and solid objects with GPR using neural networks and pattern recognition
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Automatic detection of buried utilities and solid objects with GPR using neural networks and pattern recognition

机译:使用神经网络自动检测GPR和GPR的埋地器件和实体对象

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The task of locating buried utilities using ground penetrating radar is addressed, and a novel processing technique computationally suitable for on-site imaging is proposed. The developed system comprises a neural network classifier, a pattern recognition stage, and additional pre-processing, feature-extraction and image processing stages. Automatic selection of the areas of the radargram containing useful information results in a reduced data set and hence a reduction in computation time. A backpropagation neural network is employed to identify portions of the radar image corresponding to target reflections by training it to recognise the Welch power spectral density estimate of signal segments reflected from various types of buried target. This results in a classification of the radargram into useful and redundant sections, and further processing is performed only on the former. The Hough Transform is then applied to the edges of these reflections, in order to accurately identify the depth and position of the buried targets. This allows a high resolution reconstruction of the subsurface with reduced computation time. The system was tested on data containing pipes, cables and anti-personnel landmines, and the results indicate that automatic and effective detection and mapping of such structures can be achieved in near real-time. (C) 2000 Elsevier Science B.V. All rights reserved. [References: 8]
机译:解决了使用地面穿透雷达定位掩埋公用事业的任务,并提出了适合于现场成像的新型处理技术。开发系统包括神经网络分类器,模式识别阶段和附加预处理,特征提取和图像处理阶段。自动选择包含有用信息的雷达格的区域导致减少的数据集,从而降低计算时间。通过训练它以识别从各种类型的掩埋目标反射的信号段的韦尔奇功率谱密度估计来识别对应于目标反射的雷达图像的部分对应于目标反射的雷达图像的部分。这导致RADARGRAG的分类成有用和冗余部分,并且仅在前者上执行进一步的处理。然后将霍夫变换施加到这些反射的边缘,以便精确地识别掩埋目标的深度和位置。这允许具有降低计算时间的地下的高分辨率重建。该系统在包含管道,电缆和杀伤人员地雷数据上进行测试,结果表明,可以在近期实时实现这种结构的自动和有效的检测和映射。 (c)2000 Elsevier Science B.V.保留所有权利。 [参考:8]

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