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Noniterative algorithms for electrical resistivity imaging applied to subsurface local anomalies

机译:应用于地下局部异常的电阻率成像非迭代算法

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摘要

In this paper, we compare five noniterative (one-step) algorithms for two-dimensional electrical resistivity imaging applied to the location of subsurface local anomalies. Here, we analyze the performance of two backprojection algorithms and three algorithms based on a least-squares criterion. These five algorithms can also be adapted for process and medical tomography. Algorithm performance is first assessed from synthetic data derived from an analytical solution. We show that least-squares-based algorithms outperform backprojection algorithms in all situations considered. One of the least-squares algorithms was further validated with experimental measurements involving spherical objects immersed into a water tank. Data were obtained using a 16-electrode linear array and a computer-controlled data-acquisition system. A reference measurement before immersing the objects into the water tank reduced errors in the reconstructed image attributable to the uncertain electrode position and the finite dimensions of the tank. Images deteriorated for deeper objects, but neglecting measurements with the smallest signal-to-noise ratio improved the results.
机译:在本文中,我们比较了应用于地下电阻率异常的二维电阻率成像的五种非迭代(一步式)算法。在这里,我们基于最小二乘准则分析两种反投影算法和三种算法的性能。这五个算法也可以适用于过程和医学断层扫描。首先从分析解决方案得出的综合数据中评估算法性能。我们表明,在所有考虑的情况下,基于最小二乘的算法均优于反投影算法。最小二乘算法之一已通过涉及将球形物体浸入水箱的实验测量得到了进一步验证。数据是使用16电极线性阵列和计算机控制的数据采集系统获得的。在将物体浸入水箱之前的参考测量减少了由于不确定的电极位置和水箱的有限尺寸而导致的重建图像中的误差。对于较深的物体,图像会变差,但是忽略具有最小信噪比的测量可以改善结果。

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