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An Energy-Efficient Architecture for DTN Throwboxes

机译:用于DTN Brownboxes的节能架构

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Disruption Tolerant Networks rely on intermittent contacts between mobile nodes to deliver packets using store-carry-and-forward paradigm. The key to improving performance in DTNs is to engineer a greater number of transfer opportunities. We earlier proposed the use of throwbox nodes, which are stationary, battery powered nodes with storage and processing, to enhance the capacity of DTNs. However, the use of throwboxes without efficient power management is minimally effective. If the nodes are too liberal with their energy consumption, they will fail prematurely. However if they are too conservative, they may miss important transfer opportunities, hence increasing lifetime without improving performance. In this paper, we present a hardware and software architecture for energy efficient throwboxes in DTNs. We propose a hardware platform that uses a multi-tiered, multi-radio, scalable, solar powered platform. The throwbox employs an approximate heuristic for solving the NP-Hard problem of meeting an average power constraint while maximizing the number of bytes forwarded by it. We built and deployed prototype throwboxes in UMassDieselNet - a bus DTN testbed. Through extensive trace-driven simulations and prototype deployment we show that a single throwbox with a 270cm{sup}2 solar panel can run perpetually while improving packet delivery by 37% and reducing message delivery latency by at least 10% in the network.
机译:中断容忍网络依赖于移动节点之间的间歇联系人,以使用商店携带和前进范例传递数据包。提高DTNS性能的关键是为更大数量的转移机会设计。我们之前建议使用垃圾箱节点,该节点是静止的电池供电的节点,用于增强DTN的容量。但是,使用没有高效电源管理的旧箱的使用是最有效的。如果节点对其能量消耗过于自由,则它们将过早失败。然而,如果他们过于保守,他们可能会错过重要的转移机会,因此增加了一生而不需要提高性能。在本文中,我们为DTN中的节能换箱提供了一种硬件和软件架构。我们提出了一个使用多层,多电台,可扩展,太阳能平台的硬件平台。 Throwbox采用近似启发式,用于解决满足平均功率约束的NP难题,同时最大化由其转发的字节数。我们在Umassdieselnet中构建和部署了原型掷箱 - 一辆经过了一辆公共汽车DTN测试的。通过广泛的跟踪驱动模拟和原型部署,我们表明,与270厘米{SUP} 2的太阳能电池板的单个throwbox可以运行永久同时通过37%改善的分组递送和在网络中至少10%的减少消息传送等待时间。

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