Situation-Based Dynamic Frame-Rate Control for on-Line Object Tracking

Y. Inoue, T. Ono, Koji Inouer
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引用次数: 1

Abstract

On-line object tracking is an essential technology in computer vision. Object tracking systems need to reduce their energy consumption because the technology is increasingly being utilized for battery-operated systems, e.g., driving assist systems, smartphones, drones and so on. To tackle this problem, dynamic frame-rate optimization has been proposed. This approach optimizes the frame-rate on the basis of target object speed by taking into account the energy trade-off between the image capturing and tracking processes. In order to improve tracking accuracy, the approach selects a frame-rate based on a specific fixed value. However, the required parameters are different depending on the scene and content of the input video. In this paper, we propose a method to adaptively select parameters. Simulation results show the energy consumption is reduced by up to about 65.0%, and 45.0 % on average without critical tracking accuracy degradation.
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基于情境的在线目标跟踪动态帧率控制
在线目标跟踪是计算机视觉中的一项重要技术。目标跟踪系统需要降低能耗,因为该技术越来越多地用于电池驱动的系统,例如驾驶辅助系统、智能手机、无人机等。为了解决这个问题,动态帧率优化被提出。该方法通过考虑图像捕获和跟踪过程之间的能量权衡,在目标物体速度的基础上优化帧率。为了提高跟踪精度,该方法基于特定的固定值选择帧率。但是,根据输入视频的场景和内容不同,所需的参数也不同。本文提出了一种自适应选择参数的方法。仿真结果表明,在不影响关键跟踪精度的情况下,该算法的能耗降低了65.0%,平均降低了45.0%。
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