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Adaptable architectures for distributed visual target tracking

机译:用于分布式视觉目标跟踪的适应性架构

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There are a growing number of visual tracking applications for mobile devices. However, the computer vision algorithms which process real-time video to track moving targets are demanding. Since a single mobile device possesses limited computational capabilities, energy, etc. to fully support target tracking, some works have investigated architectures which migrate a portion of tracking duties to another device at the cost of transmission bandwidth and energy. In this paper, we investigate the resource utilization in such architectures and present an adaptable architecture which balances tracking workload among the participating devices based on current resource availability (energy, temperature, bandwidth). Results show that the proposed solution requires low additional overhead, can improve on tracking system lifetime by reducing energy consumption, and is more effective in maintaining safe operating temperatures within participants as compared to previously investigated architecture
机译:移动设备存在越来越多的视觉跟踪应用程序。但是,处理实时视频以跟踪移动目标的计算机视觉算法很苛刻。由于单个移动设备具有有限的计算能力,能量等来完全支持目标跟踪,因此有些作品已经调查了以传输带宽和能量成本将跟踪关税的一部分迁移到另一个设备的架构。在本文中,我们研究了这种架构中的资源利用,并呈现了一种适应性的架构,其基于当前资源可用性(能量,温度,带宽)来平衡参与设备之间的工作负载。结果表明,该解决方案需要较低的额外开销,通过降低能量消耗,可以提高跟踪系统寿命,并且与先前调查的架构相比,在参与者内保持安全的操作温度更有效

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