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Transparently bridging semantic gap in CPU management for virtualized environments

机译:透明地弥合虚拟化环境中CPU管理中的语义鸿沟

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Consolidated environments are progressively accommodating diverse and unpredictable workloads in conjunction with virtual desktop infrastructure and cloud computing. Unpredictable workloads, however, aggravate the semantic gap between the virtual machine monitor and guest operating systems, leading to inefficient resource management. In particular, CPU management for virtual machines has a critical impact on I/O performance in cases where the virtual machine monitor is agnostic about the internal workloads of each virtual machine. This paper presents virtual machine scheduling techniques for transparently bridging the semantic gap that is a result of consolidated workloads. To enable us to achieve this goal, we ensure that the virtual machine monitor is aware of task-level I/O-boundedness inside a virtual machine using inference techniques, thereby improving I/O performance without compromising CPU fairness. In addition, we address performance anomalies arising from the indirect use of 1/0 devices via a driver virtual machine at the scheduling level. The proposed techniques are implemented on the Xen virtual machine monitor and evaluated with micro-benchmarks and real workloads on Linux and Windows guest operating systems.
机译:整合的环境与虚拟桌面基础架构和云计算一起逐渐适应各种不可预测的工作负载。但是,不可预测的工作负载加剧了虚拟机监视器和来宾操作系统之间的语义鸿沟,导致资源管理效率低下。特别是,在虚拟机监视器无法确定每个虚拟机的内部工作负载的情况下,虚拟机的CPU管理对I / O性能具有至关重要的影响。本文提出了虚拟机调度技术,用于透明地弥合由于合并工作负载而产生的语义鸿沟。为了使我们能够实现此目标,我们确保虚拟机监视器使用推理技术了解虚拟机内部任务级别的I / O限制,从而在不损害CPU公平性的情况下提高了I / O性能。此外,我们还解决了在计划级别通过驱动程序虚拟机间接使用1/0设备引起的性能异常。所提出的技术在Xen虚拟机监视器上实现,并在Linux和Windows来宾操作系统上使用微基准和实际工作负载进行评估。

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