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The need for speed and stability in data center power capping

机译:数据中心电力封盖中的速度和稳定性

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Data centers can lower costs significantly by pro-visioning expensive electrical equipment (such as UPS, diesel generators, and cooling capacity) for the actual peak power consumption rather than server nameplate power ratings. However, it is possible that this under-provisioned power level is exceeded due to software behaviors on rare occasions and could cause the entire data center infrastructure to breach the safety limits. A mechanism to cap servers to stay within the provisioned budget is needed, and processor frequency scaling based power capping methods are readily available for this purpose. We show that existing methods, when applied across a large number of servers, are not fast enough to operate correctly under rapid power dynamics observed in data centers. We also show that existing methods when applied to an open system (where demand is independent of service rate) can cause cascading failures in the software service hosted, causing the service performance to fall uncontrollably even when power capping is applied for only a small reduction in power consumption. We discuss the causes for both these short-comings and point out techniques that can yield a safe, fast, and stable power capping solution. Our techniques use admission control to limit power consumption and ensure stability, resulting in orders of magnitude improvement in performance. We also discuss why admission control cannot replace existing power capping methods but must be combined with them.
机译:通过对实际峰值功耗(例如UPS,柴油发电机和冷却能力)而不是服务器铭牌电力额定值,数据中心可以显着降低成本。然而,由于在罕见场合的软件行为,可能导致整个数据中心基础设施违反安全限制,因此可能会超过这种不配置的功率水平。需要将要保持在配置预算范围内的CAP服务器的机制,并且基于处理器频率缩放的电力覆盖方法可以随时为此目的提供。我们表明现有方法,当在大量服务器上应用时,在数据中心观察到的快速功率动态下不够快地运行。我们还显示应用于开放系统时的现有方法(需求无关)可能导致托管软件服务中的级联故障,即使仅应用电源覆盖仅少量的电源覆盖时,也会无法控制的服务性能能量消耗。我们讨论了这两种短暂转化的原因,并指出了能够产生安全,快速和稳定的电压封装解决方案的技术。我们的技术使用准入控制来限制功耗并确保稳定性,从而导致性能提高数量级。我们还讨论了为什么准入控制无法替换现有的电源覆盖方法,但必须与它们组合。

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