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Design and Field Experimentation of an Energy-Efficient Architecture for DTN Throwboxes

机译:DTN投掷箱的节能架构的设计和现场试验

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Disruption-tolerant networks (DTNs) rely on intermittent contacts between mobile nodes to deliver packets using a store-carry-and-forward paradigm. 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 multitiered, multiradio, 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 the throwbox. We built and deployed prototype throwboxes in UMass DieselNet, a bus-based DTN testbed. Through extensive trace-driven simulations and prototype deployment, we show that a single throwbox with a 270-cm$^2$ 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:容错网络(DTN)依靠移动节点之间的间歇性联系来使用存储转发范式传递数据包。我们早先提出了使用掷盒节点(即固定的,由电池供电的节点,具有存储和处理功能)来增强DTN的容量。但是,在没有有效电源管理的情况下使用投掷箱的效率最低。如果节点在能源消耗方面过于宽松,它们将过早失效。但是,如果它们过于保守,则可能会错过重要的转移机会,因此会延长使用寿命,而不会提高性能。在本文中,我们介绍了DTN中节能投掷箱的硬件和软件体系结构。我们提出了一个使用多层,多无线电,可扩展的太阳能平台的硬件平台。抛出框采用一种近似试探法来解决NP-hard问题,该问题满足平均功率约束,同时最大化抛出框转发的字节数。我们在基于总线的DTN测试平台UMass DieselNet中构建并部署了原型投掷箱。通过广泛的跟踪驱动模拟和原型部署,我们显示了一个带有270-cm $ ^ 2 $太阳能电池板的单个投掷箱可以永久运行,同时将数据包传递速度提高了37%,并将消息传递延迟至少降低了10%。 。

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