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Efficient workload and resource management in datacenters.

机译:数据中心中的高效工作负载和资源管理。

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摘要

This dissertation focuses on developing algorithms and systems to improve the efficiency of operating mega datacenters with hundreds of thousands of servers. In particular, it seeks to address two challenges: First, how to distribute the workload among the set of datacenters geographically deployed across the wide area? Second, how to manage the server resources of datacenters using virtualization technology?;In the first part, we consider the workload management problem in geo-distributed datacenters. We first present a novel distributed workload management algorithm that jointly considers request mapping, which determines how to direct user requests to an appropriate datacenter for processing, and response routing, which decides how to select a path among the set of ISP links of a datacenter to route the response packets back to a user. In the next chapter, we study some key aspects of cost and workload in geodistributed datacenters that have not been fully understood before. Through extensive empirical studies of climate data and cooling systems, we make a case for temperature aware workload management, where the geographical diversity of temperature and its impact on cooling energy efficiency can be used to reduce the overall cooling energy. Moreover, we advocate for holistic workload management for both interactive and batch jobs, where the delay-tolerant elastic nature of batch jobs can be exploited to further reduce the energy cost. A consistent 15% to 20% cooling energy reduction, and a 5% to 20% overall cost reduction are observed from extensive trace-driven simulations.;In the second part of the thesis, we consider the resource management problem in virtualized datacenters. We design Anchor, a scalable and flexible architecture that efficiently supports a variety of resource management policies. We implement a prototype of Anchor on a small-scale in-house datacenter with 20 servers. Experimental results and trace-driven simulations show that Anchor is effective in realizing various resource management policies, and its simple algorithms are practical to solve virtual machine allocation with thousands of VMs and servers in just ten seconds.
机译:本文的重点是开发算法和系统,以提高拥有数十万台服务器的大型数据中心的运行效率。特别是,它寻求解决两个挑战:首先,如何在整个地理区域中广泛分布的数据中心之间分配工作负载?第二,如何使用虚拟化技术管理数据中心的服务器资源?第一部分,我们考虑了地理分布数据中心的工作量管理问题。我们首先提出一种新颖的分布式工作负载管理算法,该算法共同考虑了请求映射,该算法确定了如何将用户请求定向到适当的数据中心进行处理,以及响应路由,该路由确定了如何在数据中心的ISP链接集中选择路径将响应数据包路由回用户。在下一章中,我们将研究以前尚未完全了解的地理分布数据中心的成本和工作量的一些关键方面。通过对气候数据和冷却系统进行广泛的实证研究,我们为温度感知型工作负载管理提供了依据,其中温度的地理多样性及其对冷却能效的影响可用于减少总体冷却能。此外,我们提倡对交互式和批处理作业进行整体工作负载管理,其中可以利用批处理作业的延迟容忍弹性特性来进一步降低能源成本。通过广泛的跟踪驱动模拟,可以观察到一致的15%到20%的冷却能耗降低和5%到20%的总体成本降低。论文的第二部分,我们考虑了虚拟化数据中心中的资源管理问题。我们设计了Anchor,这是一种可扩展且灵活的体系结构,可以有效地支持各种资源管理策略。我们在具有20个服务器的小型内部数据中心中实现Anchor的原型。实验结果和跟踪驱动的仿真表明,Anchor在实现各种资源管理策略方面非常有效,其简单算法可在短短10秒内解决具有数千个VM和服务器的虚拟机分配问题。

著录项

  • 作者

    Xu, Hong.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Computer.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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