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Multi-camera vision-based productivity monitoring of earthmoving operations

机译:基于多摄像机视觉的土方作业生产率监控

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摘要

To be successful in managing earthmoving projects, it is very important to monitor the operational efficiency and productivity of heavy equipment. Researchers have investigated many vision-based methods and demonstrated their high applicability to automated productivity monitoring. However, they primarily focused on developing a single-camera vision-based approach that monitors heavy equipments movement using video data collected from only one camera, and thus they normally failed in continuous earthmoving productivity monitoring due to its limited visibility; for instance, it would be difficult to understand what dump trucks are actually doing if they disappear from the single-camera's field of view. To address these limitations, this paper proposes a multi-camera vision-based productivity monitoring methodology that analyzes videos captured from multiple non-overlapping cameras at the jobsite. The proposed methodology consists of three main processes: (1) multi-camera placement at different physical locations on site, (2) single-camera vision-based equipment monitoring, and (3) multi-camera vision-based equipment matching (i.e., finding the same object in multiple cameras) for productivity analysis. For validation, the authors conducted experiments using video data of 371,125 image frames recorded from an actual earthmoving site for highway construction, and the results confirmed the potential of precise productivity monitoring with the average 97.6% equipment matching accuracy. To the authors' knowledge, this is the first attempt to monitor the productivity of earthmoving equipment using multiple cameras, and these findings will support to more reliable automated productivity monitoring of earthmoving operations.
机译:为了成功管理土方工程,监视重型设备的运营效率和生产率非常重要。研究人员研究了许多基于视觉的方法,并证明了它们在自动化生产率监控中的高度适用性。但是,他们主要致力于开发一种基于单摄像机视觉的方法,该方法仅使用从一台摄像机收集的视频数据来监视重型设备的运动,因此,由于可见性有限,它们通常无法连续进行土方生产力监控;例如,如果自卸车从单摄像头的视野中消失,将很难理解它们在做什么。为了解决这些局限性,本文提出了一种基于多摄像机视觉的生产力监控方法,该方法可分析从现场的多个不重叠摄像机捕获的视频。拟议的方法包括三个主要过程:(1)在现场不同物理位置放置多台摄像机;(2)基于单摄像机视觉的设备监控;以及(3)基于多摄像机视觉的设备匹配(即,在多个摄像机中找到相同的对象)以进行生产率分析。为了进行验证,作者使用从实际土方现场记录的用于公路建设的371,125个图像帧的视频数据进行了实验,结果证实了以平均97.6%的设备匹配精度进行精确的生产率监控的潜力。据作者所知,这是使用多台摄像机监视土方设备生产率的首次尝试,这些发现将支持对土方作业进行更可靠的自动化生产率监测。

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