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A novel DNN tracking algorithm for structural system identification

机译:一种用于结构系统识别的新型DNN跟踪算法

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摘要

In the field of structural health monitoring (SHM), cameras record videos and tracking methods can be applied to calculate the structural displacement. Commercial and unmanned aerial vehicle (UAV) cameras are promising non-contact sensors owning to their high availability and easy installation. However, effective tracking methods need to be developed. In this study, we firstly propose an end-to-end vision measuring framework with a novel deep neural network (DNN) tracker, named Siamese Single Decoder Network (SiamSDN). The system requires no target installation and uses cellphone cameras. For SiamSDN, the position and scale of bounding box are formulated through statistical parameter estimation. Unlike generative trackers, SiamSDN does not require manually extracted features or pre-defined motion areas. The tracking object is solely identified in the first frame. A shaking table test of a five-storey structure is carried out to demonstrate the efficiency. Besides, a UAV is used to simulate the field test. To minimize the error caused by the vibrations of UAV, digital video stabilization (DVS) is proposed to eliminate the drifts. Videos taken by both the commercial and UAV cameras are analyzed to calculate the displacements. Comparing our DNN tracker with feature point matching approach, SiamSDN improves the displacement measuring accuracy by 66.16% and 57.54%, respectively, and the frequency characteristics are obtained precisely.
机译:在结构健康监测(SHM)领域,可以应用摄像机记录视频和跟踪方法来计算结构位移。商业和无人机航空公司(UAV)摄像机是拥有其高可用性和易于安装的非接触式传感器。但是,需要开发有效的跟踪方法。在这项研究中,我们首先提出了一种具有新的深度神经网络(DNN)跟踪器的端到端视觉测量框架,名为SIDESE单个解码器网络(SIAMSDN)。系统不需要目标安装并使用手机相机。对于SIAMSDN,边界框的位置和规模通过统计参数估计制定。与生成跟踪器不同,SIAMSDN不需要手动提取特征或预定义的运动区域。跟踪对象仅在第一帧中识别。进行了五层结构的振动台测试以证明效率。此外,UAV用于模拟现场测试。为了最小化由UAV的振动引起的误差,提出了数字视频稳定(DVS)来消除漂移。分析商业和UAV摄像机拍摄的视频以计算位移。使用具有特征点匹配方法的DNN跟踪器将SIAMSDN分别通过66.16%和57.54%提高了位移测量精度,并且精确地获得了频率特性。

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