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Linear programming approaches for power savings in software-defined networks

机译:线性编程方法可在软件定义的网络中节省功耗

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Software-defined networks have been proposed as a viable solution to decrease the power consumption of the networking component in data center networks. Still the question remains on which scheduling algorithms are most suited to achieve this goal. We propose 4 different linear programming approaches that schedule requested traffic flows on SDN switches according to different objectives. Depending on pre-defined software quality requirements such as delay and performance, a single variation or a combination of variations can be selected to optimize the power saving and the performance metrics. Our simulation results demonstrate that all our algorithm variations outperform the shortest path scheduling algorithm, our baseline on power savings, less or more strongly depending on the power model chosen. We show that in FatTree networks, where switches can save up to 60% of power in sleeping mode, we can achieve 15% minimum improvement assuming a one-to-one traffic scenario. Two of our algorithm variations privilege performance over power saving and still provide around 45% of the maximum achievable savings.
机译:已经提出软件定义的网络作为减少数据中心网络中网络组件功耗的可行解决方案。仍然存在关于哪种调度算法最适合实现该目标的问题。我们提出了4种不同的线性规划方法,可以根据不同的目标在SDN交换机上调度请求的流量。根据预定义的软件质量要求(例如延迟和性能),可以选择单个变体或变体组合来优化节能和性能指标。我们的仿真结果表明,我们所有算法的变化都优于最短路径调度算法(即节电基准),取决于所选择的功耗模型,其性能变弱或变强。我们显示出,在FatTree网络中,交换机可以在睡眠模式下节省多达60%的功率,假设一对一的流量情况,我们可以实现15%的最低改进。我们的两种算法变型在节能方面具有特权性能,并且仍可提供约45%的最大可实现节余。

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