Discrete Tomography Approach for Subsurface Object Detection by Artificial Neural Network

O. Pryshchenko, O. Dumin, V. Plakhtii
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引用次数: 1

Abstract

The problem of the underground object detection by short impulse electromagnetic wave is presented in this work. The plane electromagnetic wave is incident on the boundary between air and model of the ground normally. The electromagnetic problem of the wave propagation and its reflection on subsurface objects is solved numerically by FDTD method. The time dependences of the reflected wave received under the boundary are analyzed to detect subsurface objects. For this purpose the artificial neural network (ANN) uses the signals received in points under the boundary at fixed height. Time dependencies of received electromagnetic field is discretized with a constant time step. Additional information for the ANN is obtained by time-spatial processing that based on discrete tomography approach. The set of points presented the received time dependences is multiplied on pre-calculated time-spatial attenuation matrix. The matrix is formed on ray tracing method, antenna pattern, wave attenuation and time delays of wave in media. Underground spatial points serve as a secondary source of electromagnetic field. The work of the ANN is verified on testing data that correspond to intermediate positions of a hidden object.
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基于人工神经网络的地下目标检测离散层析成像方法
本文研究了利用短脉冲电磁波探测地下目标的问题。平面电磁波通常入射在空气与地面模型的边界上。用时域有限差分法数值求解了波在地下物体上传播和反射的电磁问题。分析了在边界下接收到的反射波的时间依赖性,以探测地下目标。为此,人工神经网络(ANN)使用在固定高度的边界下点接收到的信号。将接收到的电磁场的时间依赖性以恒定的时间步长离散化。神经网络的附加信息通过基于离散层析成像方法的时空处理获得。将接收到的时间依赖点集合与预先计算的时空衰减矩阵相乘。矩阵是根据射线追迹法、天线方向图、波的衰减和波在介质中的时间延迟形成的。地下空间点是电磁场的二次源。在隐藏目标中间位置对应的测试数据上验证了人工神经网络的工作。
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