Virtualizing performance asymmetric multi-core systems

Youngjin Kwon, Changdae Kim, S. Maeng, Jaehyuk Huh
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引用次数: 40

Abstract

Performance-asymmetric multi-cores consist of heterogeneous cores, which support the same ISA, but have different computing capabilities. To maximize the throughput of asymmetric multi-core systems, operating systems are responsible for scheduling threads to different types of cores. However, system virtualization poses a challenge for such asymmetric multi-cores, since virtualization hides the physical heterogeneity from guest operating systems. In this paper, we explore the design space of hypervisor schedulers for asymmetric multi-cores, which do not require asymmetry-awareness from guest operating systems. The proposed scheduler characterizes the efficiency of each virtual core, and map the virtual core to the most area-efficient physical core. In addition to the overall system throughput, we consider two important aspects of virtualizing asymmetric multi-cores: performance fairness among virtual machines and performance scalability for changing availability of fast and slow cores. We have implemented an asymmetry-aware scheduler in the open-source Xen hypervisor. Using applications with various characteristics, we evaluate how effectively the proposed scheduler can improve system throughput without asymmetry-aware operating systems. The modified scheduler improves the performance of the Xen credit scheduler by as much as 40% on a 12-core system with four fast and eight slow cores. The results show that even the VMs scheduled to slow cores have relatively low performance degradations, and the scheduler provides scalable performance with increasing fast core counts.
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虚拟化性能不对称的多核系统
性能不对称多核由异构核组成,支持相同的ISA,但计算能力不同。为了最大限度地提高非对称多核系统的吞吐量,操作系统负责将线程调度到不同类型的核。然而,系统虚拟化对这种非对称多核提出了挑战,因为虚拟化对客户机操作系统隐藏了物理异构性。在本文中,我们探讨了不对称多核管理程序调度器的设计空间,它不需要客户机操作系统的不对称感知。建议的调度器描述每个虚拟核心的效率,并将虚拟核心映射到最具区域效率的物理核心。除了总体系统吞吐量之外,我们还考虑了虚拟化非对称多核的两个重要方面:虚拟机之间的性能公平性和快速和慢速核心可用性变化的性能可伸缩性。我们在开源Xen管理程序中实现了一个不对称感知调度器。使用具有各种特征的应用程序,我们评估了在没有不对称感知操作系统的情况下,所建议的调度器如何有效地提高系统吞吐量。修改后的调度器在12核系统(4个快核和8个慢核)上将Xen信用调度器的性能提高了40%。结果表明,即使是调度到慢核的虚拟机也有相对较低的性能下降,并且调度器提供了随着快速核数增加而可扩展的性能。
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