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Right-Sizing Server Capacity Headroom for Global Online Services

机译:全球在线服务的合适大小的服务器容量余量

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We present a capacity planning case study showing a significant opportunity for improving the utilization of a large, low-latency, highly available online service containing 100K+ servers spanning 9 geographic regions. Analyzing 30 PB of traces over 90 days we devised a new iterative black-box capacity planning model using the discovered relationships between workload, utilization, and quality. We verified the model on 1,000s of servers showing capacity reductions between 20% and 40% with effectively no impact on workload latency, availability, or the capacity required for disaster recovery. These results are confirmed experimentally by shrinking production server pools to cause the remaining servers to run at higher utilization, and using data from real-world large scale unplanned failures. Finally, we show examples of using our model for offline regression analysis to detect critical issues before their deployment.
机译:我们提供了一个容量规划案例研究,显示了一个巨大的机会,可以改善包含9个地理区域的100K +服务器的大型,低延迟,高可用性在线服务的利用率。在分析90天内的30 PB跟踪时,我们利用发现的工作负载,利用率和质量之间的关系,设计了一个新的迭代黑盒容量计划模型。我们在1,000台服务器上验证了该模型,该模型显示出容量减少了20%至40%之间,而对工作负载延迟,可用性或灾难恢复所需的容量没有任何影响。通过缩小生产服务器池以使其余服务器以更高的利用率运行,并使用来自现实世界中大规模计划外故障的数据,可以通过实验确认这些结果。最后,我们展示了使用模型进行离线回归分析以在部署关键问题之前对其进行检测的示例。

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