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首页> 外文期刊>Computer-Aided Civil and Infrastructure Engineering >Vision-Based Automated Crack Detection for Bridge Inspection
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Vision-Based Automated Crack Detection for Bridge Inspection

机译:基于视觉的桥梁检测自动裂缝检测

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摘要

Visual inspection of bridges is customarily used to identify and evaluate faults. However, current procedures followed by human inspectors demand long inspection times to examine large and difficult to access bridges. Also, highly relying on an inspector's subjective or empirical knowledge induces false evaluation. To address these limitations, a vision-based visual inspection technique is proposed by automatically processing and analyzing a large volume of collected images. Images used in this technique are captured without controlling angles and positions of cameras and no need for preliminary calibration. As a pilot study, cracks near bolts on a steel structure are identified from images. Using images from many different angles and prior knowledge of the typical appearance and characteristics of this class of faults, the proposed technique can successfully detect cracks near bolts.
机译:桥梁的外观检查通常用于识别和评估故障。然而,人类检查员遵循的当前程序要求较长的检查时间来检查大型且难以接近的桥梁。同样,高度依赖检查员的主观或经验知识也会导致错误的评估。为了解决这些限制,提出了一种基于视觉的视觉检查技术,该技术可以自动处理和分析大量收集的图像。无需控制摄像机的角度和位置即可捕获此技术中使用的图像,并且无需进行初步校准。作为一项初步研究,可以从图像中识别出钢结构上螺栓附近的裂缝。使用来自多个不同角度的图像以及此类故障的典型外观和特征的先验知识,所提出的技术可以成功地检测螺栓附近的裂缝。

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