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A computer vision approach for the load time history estimation of lively individuals and crowds

机译:一种计算机视觉方法,用于估计活泼的个人和人群的负荷时间历史

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摘要

A computer vision approach for measuring the load time history due to individuals and crowds jumping and bobbing is investigated. The method comprises of tracking the displacement trajectories of individuals and crowds using optical flow based algorithms followed by generating force time histories. Laboratory experiments, in which individuals and groups perform jumping at regular beats and songs on a force platform and on a grandstand simulator, are conducted. The estimated trajectories are compared directly with conventional sensors as well as indirectly with responses acquired from finite element models. The method is further validated via a field demonstration. Limitations of the method and future work for improvement are discussed. The proposed methods along with their applications on a real structure, and findings from a laboratory grandstand simulator that can accommodate experiments for groups of different sizes and structural configurations show great promise for computer vision based load modeling. In this sense, the study is taking an important step in support of creating a database for crowd loading that is needed as it is pointed out in the literature. (C) 2018 Elsevier Ltd. All rights reserved.
机译:研究了一种计算机视觉方法,用于测量由于个人和人群跳跃和摆动而引起的负载时间历史。该方法包括使用基于光流的算法跟踪个体和人群的位移轨迹,然后生成力时间历史。进行了实验室实验,其中个人和团体在部队平台和看台模拟器上以规律的节拍和歌曲进行跳跃。将估计的轨迹直接与常规传感器进行比较,并与从有限元模型获取的响应进行间接比较。通过现场演示进一步验证了该方法。讨论了该方法的局限性以及未来的改进工作。所提出的方法及其在实际结构上的应用以及实验室看台模拟器的发现(可以容纳针对不同大小和结构配置的组的实验)为基于计算机视觉的负荷建模显示了广阔的前景。从这个意义上说,这项研究迈出了重要的一步,以支持创建一个如文献所指出的用于人群装载的数据库。 (C)2018 Elsevier Ltd.保留所有权利。

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