超越社交距离:在具有隐私保护的多摄像头系统中应用真实世界坐标

Frances Ryan, Feiyan Hu, J. Dietlmeier, N. O’Connor, Kevin McGuinness
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引用次数: 0

摘要

在本文中,我们开发了一个隐私保护框架来检测和跟踪行人,并投影到他们的现实世界坐标,从而促进社会距离检测。变换是使用社交距离标记或在摄像机视图中可见的地砖计算的,没有广泛的校准过程。我们选择了一种轻量级的检测模型来处理CCTV视频并进行摄像机内跟踪。在相机内跟踪期间收集的特征,然后用于关联乘客轨迹跨多个摄像头。我们对在爱尔兰都柏林一个繁忙机场捕获的真实世界数据进行了社交距离检测和多摄像头跟踪的定性演示和分析结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Beyond Social Distancing: Application of real-world coordinates in a multi-camera system with privacy protection
In this paper, we develop a privacy-preserving framework to detect and track pedestrians and project to their real-world coordinates facilitating social distancing detection. The transform is calculated using social distancing markers or floor tiles visible in the camera view, without an extensive calibration process. We select a lightweight detection model to process CCTV videos and perform tracking within-camera. The features collected during within-camera tracking are then used to associate passenger trajectories across multiple cameras. We demonstrate and analyze results qualitatively for both social distancing detection and multi-camera tracking on real-world data captured in a busy airport in Dublin, Ireland.
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