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Extreme scale computing: Modeling the impact of system noise in multicore clustered systems

机译:极端规模的计算:在多核集群系统中建模系统噪声的影响

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System noise or Jitter is the activity of hardware, firmware, operating system, runtime system, and management software events. It is shown to disproportionately impact application performance in current generation large-scale clustered systems running general-purpose operating systems (GPOS). Jitter mitigation techniques such as co-scheduling jitter events across operating systems improve application performance but their effectiveness on future petascale systems is unknown. To understand if existing co-scheduling solutions enable scalable petascale performance, we construct two complementary jitter models based on detailed analysis of system noise from the nodes of a large-scale system running a GPOS. We validate these two models using experimental data from a system consisting of 128 GPOS instances with 4096 CPUs. Based on our models, we project a minimum slowdown of 2.1%, 5.9%, and 11.5% for applications executing on a similar one petaflop system running 1024 GPOS instances and having global synchronization operations once every 1000 msec, 100 msec, and 10 msec, respectively. Our projections indicate that additional system noise mitigation techniques are required to contain the impact of jitter on multi-petaflop systems, especially for tightly synchronized applications.
机译:系统噪声或抖动是硬件,固件,操作系统,运行时系统和管理软件事件的活动。它对运行通用操作系统(GPOS)的当前一代大型集群系统中的应用程序性能产生了不成比例的影响。抖动缓解技术(例如跨操作系统共同调度抖动事件)可以提高应用程序性能,但是它们在未来的PB级系统中的有效性尚不清楚。为了了解现有的协同调度解决方案是否能够实现可扩展的PB级性能,我们基于对运行GPOS的大型系统节点的系统噪声的详细分析,构建了两个互补的抖动模型。我们使用来自128个GPOS实例和4096个CPU的系统的实验数据验证了这两个模型。根据我们的模型,对于在运行1024个GPOS实例的相似的一个petaflop系统上执行的应用程序,每1000毫秒,100毫秒和10毫秒执行一次全局同步操作,我们预计应用程序的最小速度降低2.1%,5.9%和11.5%,分别。我们的预测表明,需要额外的系统噪声缓解技术来抑制抖动对多petaflop系统的影响,尤其是对于紧密同步的应用。

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