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Dynamic Models for People Detection and Tracking

机译:用于人员检测和跟踪的动态模型

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摘要

In this paper we propose a real-time algorithm for detecting and tracking moving objects in a video sequence. Based on the on-line boosting framework, our algorithm is able to detect an object as a member of a class, e.g. pedestrian, then a specific model for each instance of the class can be built on-line allowing at the same time robust tracking and recognition of the particular instance as it leaves and re-enters the scene. Promising experimental results have been performed on standard video sequences.
机译:在本文中,我们提出了一种用于检测和跟踪视频序列中的移动对象的实时算法。基于在线升压框架,我们的算法能够检测到类的一个对象,例如类别。行人,然后可以在线内置类的每个实例的特定模型,同时允许同时允许的鲁棒跟踪和识别特定实例,因为它离开并重新进入场景。有希望的实验结果已经对标准视频序列进行。

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