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Human height prediction and roads estimation for advanced video surveillance systems

机译:先进视频监控系统的人员身高预测和道路估计

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This work is aimed at automatically learning the three-dimensional structure of an outdoor scene observed by a single uncalibrated video camera. In particular, we are proposing to estimate the 3D layout of roads and paths traveled by pedestrians by observing the pedestrians and to estimate the road parameters from their height and position in a video sequence. The developed algorithm has been implemented and was successfully tested in different environment including scene luminance variation during a day, possible mistakes in pedestrian detection, road coverage variation during a year. Proposed algorithm for 3D road map estimation (up to a scale factor) can be used in video surveillance applications to classify people on the scene by their heights, to detect human abnormal trajectories, for human gait analysis, for people traffic analysis and in other applications that require automatic roads estimation and human height prediction. This algorithm can be one of building block for advanced video surveillance systems.
机译:这项工作旨在自动学习由单个未经校准的摄像机观察到的室外场景的三维结构。特别地,我们提议通过观察行人来估计行人所行进的道路和路径的3D布局,并根据他们在视频序列中的高度和位置来估计道路参数。所开发的算法已经实现并在不同的环境中成功测试,包括一天中的场景亮度变化,行人检测中可能的错误,一年中的道路覆盖率变化。提议的3D路线图估计算法(最大比例因子)可用于视频监控应用中,以根据现场人员的身高对其进行分类,检测人体异常轨迹,进行人体步态分析,进行人员流量分析以及其他应用需要自动估算道路和预测人的身高。该算法可以成为高级视频监控系统的组成部分之一。

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