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Efficient Location Training Protocols for Heterogeneous Sensor and Actor Networks

机译:异构传感器和Actor网络的有效位置训练协议

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In this work, we consider a large-scale geographic area populated by tiny sensors and some more powerful devices called actors, authorized to organize the sensors in their vicinity into short-lived, actor-centric sensor networks. The tiny sensors run on miniature nonrechargeable batteries, are anonymous, and are unaware of their location. The sensors differ in their ability to dynamically alter their sleep times. Indeed, the periodic sensors have sleep periods of predefined lengths, established at fabrication time; by contrast, the free sensors can dynamically alter their sleep periods, under program control. The main contribution of this work is to propose an energy-efficient location training protocol for heterogeneous actor-centric sensor networks where the sensors acquire coarse-grain location awareness with respect to the actor in their vicinity. Our theoretical analysis, confirmed by experimental evaluation, shows that the proposed protocol outperforms the best previously known location training protocols in terms of the number of sleep/awake transitions, overall sensor awake time, and energy consumption.
机译:在这项工作中,我们考虑了由微型传感器和一些功能更强大的设备(称为actor)组成的大规模地理区域,这些设备被授权将附近的传感器组织为短暂的,以actor为中心的传感器网络。这些微型传感器使用微型不可充电电池运行,是匿名的,并且不知道它们的位置。传感器在动态更改睡眠时间方面的能力有所不同。实际上,周期性传感器具有在制造时建立的预定长度的睡眠周期;即,在制造过程中,该睡眠周期被确定。相反,自由传感器可以在程序控制下动态更改其睡眠时间。这项工作的主要贡献是为异构的以演员为中心的传感器网络提出了一种节能的位置训练协议,其中传感器获得了关于其附近演员的粗粒度位置感知。我们的理论分析(通过实验评估得到证实)表明,在睡眠/清醒转变次数,整体传感器清醒时间和能量消耗方面,拟议的方案优于以前最好的位置训练方案。

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