基于数字孪生和机器学习的自动化基础设施检查

E. Forstner, P. Furtner, A. Karlusch
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引用次数: 2

摘要

现代社会面临的主要挑战之一是提供安全的交通基础设施。基础设施管理人员必须遵守法规,要求定期检查主要基础设施的损坏情况,以免其成为安全隐患。在标准的结构检查中,专门合格的土木工程师前往被检查对象现场。为以后的报告准备了说明、草图和照片。视察员带着特殊的重型视察设备被介绍到不能直接进入的地点。在这样的测试中,对象是不可用的或只是部分可用的,这会导致中断、延迟、交通堵塞,从而导致相当大的不可用性成本。近年来,基于无人机的结构检测方法越来越受到关注。这些主要限于对所创建的光学图像进行视觉检查。通过使用新技术,可以以更低的成本进行更客观、更快速的结构检测。为了达到尽可能高的自动化水平,实际的测试不再在真实的对象上执行,而是在结构的数字孪生上执行。损害评估和报告是自动进行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automated infrastructure inspection based on digital twins and machine learning
One of the key challenges in our modern society is the provision of safe transport infrastructure. Infrastructure managers are subject to regulations requiring major infrastructures to be periodically checked for damage before it becomes a safety hazard. In the standard structural inspection, specially qualified civil engineers travel to the object to be inspected on site. Notes, sketches and photos are prepared for the subsequent report. The inspectors are introduced to non-directly accessible locations with special, heavy inspection equipment. During such a test the object is not or only partially usable, which leads to interruptions, delays, traffic jam and thus considerable non-availability costs. In recent years, approaches of a drone-based structural inspection are increasingly noticeable. These are mainly limited to a visual inspection of the created optical images. By using new technologies, a more objective and faster structural inspection can be carried out at a lower cost. In order to achieve the highest possible level of automation, the actual test is no longer performed on the real object, but on a digital twin of the construction. The assessment of damages and reporting is carried out automatically.
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