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TLS FOR DETECTING SMALL DAMAGES ON A BUILDING FA?ADE

机译:TLS用于检测建筑幕墙上的小损伤

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摘要

Weathering, aging, infiltration, solar radiation and several other factors cause the deterioration of buildings and infrastructures and hence the need for periodical maintenance and restoration. The need for maintenance has been traditionally determined based on visual inspections of qualified operators. Since this process is obviously time consuming and quite expensive, especially when the considered building is quite large and high, then a number of recent studies have been recently published proposing remote sensing tools in order to ease the monitoring process. Among the possible spatial data acquisition sensors, terrestrial laser scanning has been considered in several of the existing studies, mostly because of its high reliability, to cope with cracks and defect detection up to the millimeter level of resolution, which is the typical accuracy of the current generation of professional laser scanners. This paper considers the problem of detecting small defects on the fa?ade of a University building. Similar to other previous studies, in this work defect detection is accomplished by considering distances with respect to a planar surface locally fitted on the building fa?ade. Then, statistical filtering and machine learning tools have been implemented in order to cope with damage detection of the brick surfaces at sub-millimeter level.
机译:风化,老化,渗透,太阳辐射和其他一些因素导致建筑物和基础设施的恶化,因此需要定期维护和修复。传统上是根据合格操作员的目视检查确定维护需求的。由于此过程显然很耗时且相当昂贵,尤其是在所考虑的建筑物很大且很高的情况下,因此最近发表了许多最近的研究,提出了遥感工具,以简化监控过程。在可能的空间数据采集传感器中,一些现有研究已经考虑了地面激光扫描,这主要是因为其可靠性高,可以应对高达毫米级分辨率的裂缝和缺陷检测,这是该技术的典型精度。当前的专业激光扫描仪。本文考虑了在大学建筑立面上检测微小缺陷的问题。与其他先前的研究类似,在这项工作中,通过考虑相对于局部安装在建筑物立面上的平面的距离来完成缺陷检测。然后,为了应对亚毫米级别砖表面的损坏检测,已经实现了统计过滤和机器学习工具。

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