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Renewable Energy-Aware Manycast Overlays

机译:可再生能源感知的多播覆盖

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Manycasting allows a single source to reach multiple destinations while providing flexibility in destination selection. Our goal in this paper is to improve the cost of the manycast drop at member node (MA-DMN) overlay algorithm in terms of energy consumption and associated greenhouse gas (GHG) emissions. To reduce the environmental impact, ideally, a large percentage of the network nodes along the transmission and the chosen destinations need to be green. We present a novel energy-conservative emission-aware variant of the MA-DMN algorithm. We then propose further modifications to increase the utilization of those destinations that are powered by renewable energy sources: manycast drop at greenest nodes (MA-DGN). The potential for emission reduction by those algorithms is two-fold: The data are transported in the most efficient way and processed at the greenest available data centers. We compare the approaches by simulating realistic quantities of dynamic traffic. We assume heterogeneously distributed and time-dependent availability of renewable energy sources to power nodes throughout the network. We find that the energy-source-aware algorithms lower both energy-consumption and GHG emissions at stable network performance levels, in some cases even lowers blocking rate.
机译:多播允许单个源到达多个目的地,同时提供目的地选择的灵活性。本文的目标是从能耗和相关的温室气体(GHG)排放方面提高成员节点(MA-DMN)覆盖算法的多播丢弃的成本。为了减少对环境的影响,理想情况下,沿着传输和所选目的地的很大一部分网络节点都需要绿色。我们提出了一种MA-DMN算法的新型节能发射感知变体。然后,我们提出进一步的修改,以提高那些由可再生能源供电的目的地的利用率:最绿色节点(MA-DGN)的多播下降。这些算法减少排放的潜力有两方面:数据以最有效的方式传输并在最绿色的可用数据中心进行处理。我们通过模拟实际的动态流量来比较这些方法。我们假设可再生能源在整个网络中的功率节点的分布和时间依赖于异构。我们发现,能源感知算法在稳定的网络性能水平下降低了能耗和温室气体排放,在某些情况下甚至降低了阻塞率。

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