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Autonomous vision-based damage chronology for spatiotemporal condition assessment of civil infrastructure using unmanned aerial vehicle

机译:无人机空中车辆采用自然视觉损伤的损伤时间表对民用基础设施的时尚状况评估

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摘要

This study presents a computer vision-based approach for representing time evolution of structural damages leveraging a database of inspection images. Spatially incoherent but temporally sorted archival images captured by robotic cameras are exploited to represent the damage evolution over a long period of time. An access to a sequence of time-stamped inspection data recording the damage growth dynamics is premised to this end. Identification of a structural defect in the most recent inspection data set triggers an exhaustive search into the images collected during the previous inspections looking for correspondences based on spatial proximity. This is followed by a view synthesis from multiple candidate images resulting in a single reconstruction for each inspection round. Cracks on concrete surface are used as a case study to demonstrate the feasibility of this approach. Once the chronology is established, the damage severity is quantified at various levels of time scale documenting its progression through time. The proposed scheme enables the prediction of damage severity at a future point in time providing a scope for preemptive measures against imminent structural failure. On the whole, it is believed that the present study will immensely benefit the structural inspectors by introducing the time dimension into the autonomous condition assessment pipeline.
机译:本研究提出了一种基于计算机视觉的方法,用于代表利用检查图像数据库的结构损坏的时间演变。通过机器人相机捕获的空间不连贯但临时分类的档案图像被利用在很长一段时间内代表损坏的进化。对损伤生长动态进行记录的一系列时间戳检查数据的访问是在此目前的。在最近的检查数据集中识别结构缺陷触发到基于空间接近的前一检查期间收集的图像中的穷举搜索。随后是从多个候选图像中的视图合成,导致每次检查的单个重建。混凝土表面上的裂缝被用作案例研究,以证明这种方法的可行性。一旦规定年表,伤害严重程度在各个时间范围内量化了通过时间记录其进展的各个时间级。拟议方案使未来的时间点造成伤害严重程度,为迫在眉睫的结构失败提供了抢先措施的范围。总的来说,据信,本研究将通过将时间尺寸引入自主状态评估管道来完全受益于结构检查员。

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