在量子尺度上改进邻居发现

Xiangyun Meng, Daniel Lin-Kit Wong, B. Leong, Zixiao Wang, Yabo Dong, Dongming Lu
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引用次数: 4

摘要

现有的传感器网络通常采用占空比来降低功耗,这些网络依靠邻居发现协议来保证节点的唤醒和发现。对于不同的邻居发现协议,发现延迟由两个因素决定:唤醒-睡眠模式和插槽大小。据我们所知,之前关于邻居发现的工作迄今为止都集中在改善觉醒-睡眠模式上。在本文中,我们研究了通过减小槽大小来改善发现延迟的程度。我们发现,通过减少插槽大小,即减少活动插槽的侦听时间,信标之间的碰撞和节点之间的同步变得更加严重,这可能导致现有理论模型无法预测的发现失败。我们表明,我们可以通过减少信标的数量和引入随机化来减轻这些影响。我们提出了一种新的基于连续侦听的邻居发现算法,称为Spotlight。我们对实际传感器测试平台的评估表明,与现有最先进的邻居发现协议相比,Spotlight可以在不增加现有传感器网络功耗的情况下将发现延迟减少50%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving Neighbor Discovery by Operating at the Quantum Scale
Duty-cycling is generally adopted in existing sensor networks to reduce power consumption and these networks depend on neighbor discovery protocols to ensure that nodes wake up and discover each other. For different neighbor discovery protocols, the discovery latency is determined by two factors: the wake-sleep pattern and slot size. To the best of our knowledge, previous works on neighbor discovery have thus far been focused on improving the wake-sleep pattern. In this paper, we investigate the extent to which we can improve discovery latency by reducing the slot size. We found that by reducing the slot size, i.e., reducing the listening time in active slots, the collisions between beacons and synchronization between nodes become more severe, which can lead to discovery failures that are not predicted by existing theoretical models. We show that we can mitigate these effects by reducing the number of beacons and introducing randomization. We propose a new continuous-listening-based neighbor discovery algorithm called Spotlight. Our evaluations with a practical sensor testbed suggest that Spotlight can achieve a 50% reduction in discovery latency over existing state-of-the-art neighbor discovery protocols without increasing power consumption in existing sensor networks.
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