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Characterizing Pavement Surface Distress Conditions with Hyper-Spatial Resolution Natural Color Aerial Photography

机译:用超空间分辨率自然色航空摄影表征路面表面遇险情况

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Roadway pavement surface distress information is critical for effective pavement asset management, and subsequently, transportation management agencies at all levels ( i.e. , federal, state, and local) dedicate a large amount of time and money to routinely evaluate pavement surface distress conditions as the core of their asset management programs. However, currently adopted ground-based evaluation methods for pavement surface conditions have many disadvantages, like being time-consuming and expensive. Aircraft-based evaluation methods, although getting more attention, have not been used for any operational evaluation programs yet because the acquired images lack the spatial resolution to resolve finer scale pavement surface distresses. Hyper-spatial resolution natural color aerial photography (HSR-AP) provides a potential method for collecting pavement surface distress information that can supplement or substitute for currently adopted evaluation methods. Using roadway pavement sections located in the State of New Mexico as an example, this research explored the utility of aerial triangulation (AT) technique and HSR-AP acquired from a low-altitude and low-cost small-unmanned aircraft system (S-UAS), in this case a tethered helium weather balloon, to permit characterization of detailed pavement surface distress conditions. The Wilcoxon Signed Rank test, Mann-Whitney U test, and visual comparison were used to compare detailed pavement surface distress rates measured from HSR-AP derived products (orthophotos and digital surface models generated from AT) with reference distress rates manually collected on the ground using standard protocols. The results reveal that S-UAS based hyper-spatial resolution imaging and AT techniques can provide detailed and reliable primary observations suitable for characterizing detailed pavement surface distress conditions comparable to the ground-based manual measurement, which lays the foundation for the future application of HSR-AP for automated detection and assessment of detailed pavement surface distress conditions.
机译:巷道的路面遇险信息对于有效的路面资产管理至关重要,随后,各级交通管理机构(即联邦,州和地方)花费大量的时间和金钱来定期评估路面的遇险情况为核心他们的资产管理计划。但是,当前采用的基于地面的路面状况评估方法存在许多缺点,例如既费时又昂贵。基于飞机的评估方法虽然越来越受到关注,但尚未用于任何运营评估程序,因为所获取的图像缺乏空间分辨率,无法解决更小规模的路面表面问题。超空间分辨率自然彩色航空摄影(HSR-AP)提供了一种潜在的方法来收集路面表面遇险信息,该信息可以补充或替代当前采用的评估方法。以位于新墨西哥州的道路路面断面为例,该研究探索了空中三角测量(AT)技术和从低空低成本小型无人机系统(S-UAS)获取的HSR-AP的实用性)(在这种情况下为系留氦气气球),以表征详细的路面表面遇险情况。使用Wilcoxon Signed Rank测试,Mann-Whitney U测试和视觉比较来比较从HSR-AP衍生产品(由AT生成的正射影像和数字表面模型)测得的详细路面表面破损率与在地面上手动收集的参考破损率使用标准协议。结果表明,与基于地面的手动测量相比,基于S-UAS的超空间分辨率成像和AT技术可以提供详细和可靠的主要观测值,适合于表征详细的路面表面遇险情况,这为高铁的未来应用奠定了基础-AP,用于自动检测和评估详细的路面状况。

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