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An Improved Post-Processing Technique for Array-Based Detection of Underground Tunnels

机译:一种改进的基于阵列的地下隧道后处理技术

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This paper investigates challenges faced by many geophysical algorithms applied to real-world cases such as the Attenuation Analysis of Rayleigh Waves (AARW). AARW shows great promise in terms of detecting shallow underground tunnels. However, in-situ subsurface anomalies, including those due to anisotropy, and instrument sensitivity to natural conditions can significantly degrade the utility of this technique. To address this problem, this work proposes a data acquisition scheme and develops a new post-processing approach. The first applied measure estimates the confidence level of each detection result. The second processes the data in sub-arrays, and filters out false alarms. The third scans all detections and searches the cluster with the highest cumulative confidence level. This paper provides engineering practitioners with a simple and efficient method to reliably determine tunnel locations. Experimental results derived from data recorded in various testing sites and surface conditions verify the effectiveness of this work.
机译:本文研究了应用于实际情况的许多地球物理算法所面临的挑战,例如瑞利波的衰减分析(AARW)。 AARW在探测浅层地下隧道方面显示出巨大的希望。但是,原位地下异常(包括由于各向异性引起的异常)和仪器对自然条件的敏感性会大大降低该技术的实用性。为了解决这个问题,这项工作提出了一种数据采集方案,并开发了一种新的后处理方法。应用的第一个度量估计每个检测结果的置信度。第二个处理子数组中的数据,并过滤掉错误警报。第三个扫描所有检测结果,并以最高的累积置信度搜索群集。本文为工程从业人员提供了一种简单有效的方法来可靠地确定隧道位置。从各种测试地点和地面条件记录的数据得出的实验结果证明了这项工作的有效性。

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