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GreenTE.ai: Power-Aware Traffic Engineering via Deep Reinforcement Learning

机译:Greente.ai:通过深度加强学习动力感知流量

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Power-aware traffic engineering via coordinated sleeping is usually formulated into Integer Programming problems, which are generally NP-hard with unbounded computation time for large-scale networks. This results in delayed control decision making in dynamic network environments. Motivated by advances in deep Reinforcement Learning, we consider building intelligent systems that learn to adaptively change router/switch’s power state according to changing network conditions. Neural network’s forward propagation can greatly speed up power on/off decision making. Generally, conducting RL requires a learning agent to iteratively explore and perform the "good" actions based on the feedback from the environment. By coupling Software-Defined Networking for performing centrally calculated actions to the environment and In-band Network Telemetry for collecting feedback from the environment, we develop GreenTE.ai, a closed-loop control/training system to automate power-aware traffic engineering. Furthermore, we propose novel techniques to enhance the learning ability and reduce the learning complexity. With both energy efficiency and traffic load balancing considered, GreenTE.ai can generate reasonable power saving actions within 276ms under a network testbed of 11 software P4 switches.
机译:通过协调睡眠的动力感知流量工程通常配制成整数编程问题,这通常是大规模网络的无限计算时间的NP-Hard。这导致动态网络环境中延迟控制决策。通过深度加强学习的进步,我们考虑根据改变的网络条件建立学习智能系统,该智能系统自动改变路由器/交换机电源状态。神经网络的前向传播可以大大加快电源开/关决策。通常,导电RL需要一个学习代理来迭代地探索并基于来自环境的反馈来执行“良好”动作。通过耦合软件定义的网络来对环境和带内网络遥测执行集中计算的动作,用于从环境中收集反馈,我们开发Greente.ai,闭环控制/培训系统,以自动化动力感知流量工程。此外,我们提出了新颖的技术来提高学习能力并降低学习复杂性。通过考虑的能效和交通负荷平衡,Greente.ai可以在11个软件P4交换机的网络测试平台下产生合理的省电动作。

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