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GPR pattern recognition of shallow subsurface air voids

机译:地下浅层空洞的GPR模式识别

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Countless subsurface voids in urban areas of cities threaten people's lives and property. A workflow for automatically identifying subsurface voids from ground penetrating radar (GPR) data was developed in this study. The workflow consists of 3 stages: locating voids automatically from C-scans, then verifying voids from corresponding B-scans, and finally making judgements based upon the previous 2 sets of results. This study adopted 2 (Lai a al., 2016) approaches: approach 1 quantified the GPR response of air voids using forward modelling, while approach 2 used workflow prototyping and validation with inverse modelling. Forward simulations indicated that different ratios of void size to GPR signal footprint could result in a variety of patterns in B-scans: they can be hyperbolas, cross patterns, bowl shaped patterns and reverberations. With a database of void patterns of both C-scans and B-scans established, in approach 2 the workflow uses a pyramid pattern recognition method - with pixel value or gradient being used for feature identification - to search automatically for air-filled void responses in GPR data. The workflow was tested using 2 laboratory and field experiments and the results were promising. The constraint values proposed by the 2 experiments were validated with another site experiment. Given the huge workload involved in city-scale subsurface health inspections, a standardized workflow can help improve efficiency and effectiveness of subsurface void identification.
机译:城市市区中无数的地下空洞威胁着人们的生命和财产。在这项研究中,开发了一种从地面穿透雷达(GPR)数据自动识别地下孔隙的工作流程。工作流程包括3个阶段:从C扫描自动定位空隙,然后从相应的B扫描验证空隙,最后根据前两组结果做出判断。这项研究采用了2种方法(Lai等人,2016年):方法1使用正向建模对气孔的GPR响应进行量化,而方法2使用反向建模进行工作流原型设计和验证。前向仿真表明,空隙尺寸与GPR信号覆盖区的不同比率可能会导致B扫描中出现多种模式:它们可能是双曲线,交叉模式,碗形模式和混响。在建立了C扫描和B扫描的空洞模式数据库之后,在方法2中,工作流使用金字塔模式识别方法-使用像素值或梯度进行特征识别-在空洞中自动搜索空气中的空洞响应GPR数据。使用2个实验室和现场实验对工作流程进行了测试,结果令人鼓舞。这两个实验提出的约束值已通过另一个现场实验进行了验证。鉴于城市规模的地下健康检查涉及大量工作,因此标准化的工作流程可以帮助提高地下孔隙识别的效率和效力。

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