Person Tracking in Smart Rooms using Dynamic Programming and Adaptive Subspace Learning

ZhenQiu Zhang, G. Potamianos, Stephen M. Chu, J. Tu, Thomas S. Huang
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引用次数: 5

Abstract

We present a robust vision system for single person tracking inside a smart room using multiple synchronized, calibrated, stationary cameras. The system consists of two main components, namely initialization and tracking, assisted by an additional component that detects tracking drift. The main novelty lies in the adaptive tracking mechanism that is based on subspace learning of the tracked person appearance in selected two-dimensional camera views. The sub-space is learned on the fly, during tracking, but in contrast to the traditional literature approach, an additional "forgetting" mechanism is introduced, as a means to reduce drifting. The proposed algorithm replaces mean-shift tracking, previously employed in our work. By combining the proposed technique with a robust initialization component that is based on face detection and spatio-temporal dynamic programming, the resulting vision system significantly outperforms previously reported systems for the task of tracking the seminar presenter in data collected as part of the CHIL project
基于动态规划和自适应子空间学习的智能房间人员跟踪
我们提出了一个强大的视觉系统,用于在智能房间内使用多个同步的,校准的,固定的摄像机进行单人跟踪。该系统由两个主要组件组成,即初始化和跟踪,并辅以检测跟踪漂移的附加组件。其主要新颖之处在于自适应跟踪机制,该机制基于在选定的二维摄像机视图中对被跟踪人的外表进行子空间学习。子空间是在跟踪过程中动态学习的,但与传统文献方法不同的是,这里引入了一个额外的“遗忘”机制,作为减少漂移的一种手段。提出的算法取代了之前在我们的工作中使用的mean-shift跟踪。通过将所提出的技术与基于人脸检测和时空动态规划的鲁棒初始化组件相结合,所得到的视觉系统在跟踪作为CHIL项目一部分收集的数据的研讨会主持人任务方面显着优于先前报道的系统
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