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Automatic multiple human detection and tracking for visual surveillance system

机译:视觉监视系统的自动多人检测和跟踪

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摘要

Object Tracking is an important task in video processing because of its variety of applications in visual surveillance, human activity monitoring and recognition, traffic flow management etc. Multiple object detection and tracking in outdoor environment is a challenging task because of the problems raised by poor lighting conditions, variation in poses of human object, shape, size, clothing, etc. This paper proposes a novel technique for detection and tracking of multiple human objects in a video. A classifier is trained for object detection using Haar-like features from training image set. Human objects are detected with help of this trained detector and are tracked using particle filter. The experimental results show that the proposed technique can detect and track multiple humans in a video adequately fast in the presence of poor lighting conditions, variation in poses of human objects, shape, size, clothing etc. and the technique can handle varying number of human objects in a video at various points of time.
机译:对象跟踪是视频处理中的一项重要任务,因为它在视觉监控,人类活动监视和识别,交通流管理等方面的应用广泛。由于光照不足带来的问题,在室外环境中进行多对象检测和跟踪是一项具有挑战性的任务条件,人体对象的姿势变化,形状,大小,衣服等。本文提出了一种用于检测和跟踪视频中多个人体对象的新技术。使用来自训练图像集的类似Haar的特征训练分类器以进行对象检测。借助此训练有素的检测器可以检测到人体,并使用粒子过滤器对其进行跟踪。实验结果表明,所提出的技术在光照条件差,人的姿势,形状,大小,衣服等发生变化的情况下,可以足够快地检测和跟踪视频中的多个人,并且该技术可以处理数量不等的人视频中不同时间点的对象。

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