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Scalable resource control in large-scale computing/networking infrastructures.

机译:大规模计算/网络基础架构中的可扩展资源控制。

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The rapid advances in Information Services (IS) have generated many imminent administration challenges in the Information Technology (IT) infrastructure space. Typically, an IS uses the Internet or some other communication network to become widely accessible and further requires some form of computing data center to be supported. The tremendous success and the fast-paced development of IS have thus resulted in massive infrastructural growth rates. This fact coupled with the high expectations from the much-promising next generation of IS have tightened the performance requirements and have created many critical problems in IT infrastructures. This dissertation considers some of the resource control problems that arise in the various layers of large scale computing systems and networks.;Adopting a risk mitigation approach, two security issues are initially addressed. First, the problem of controlling the recovery time from epidemic spreads (i.e. viruses and worms) by applying resources to strengthen vulnerable sites and links is analyzed for network topologies. This problem is formulated as an eigenvalue control one which allows construction of scalable distributed algorithms via convex optimization. Second, patching management of software vulnerabilities is studied in data center environments. Unlike pre-existing literature that attempts to optimize defense against an active attack, the objective, here, is to find patching policies that minimize the service disruption cost from both maintenance operations and exploitation threats using a Dynamic Programming (DP) framework.;The focus is then placed on power/cost aware management of individual switching components. Well established scheduling algorithms are redesigned to gracefully balance the trade-off between power and packet delay in input queued (IQ) switches, in a way that maintains their ability to achieve maximal throughput. Additionally, after extending long withstanding queueing results, it is proven that power/cost efficient controls need not lack this ability in general queueing/switching service structures (QSSSs) by showing that "low workload" decisions are insignificant stability-wise.;Finally, the problem of online outsourcing of execution capacity in computing and data storage services is tackled. Leveraging from the fact that such services only recently became available online and utilizing a DP formulation, the cost and risk of the supported operations is dynamically optimized. A case study in data storage services validates the findings.
机译:信息服务(IS)的飞速发展已经在信息技术(IT)基础架构领域中提出了许多迫在眉睫的管理挑战。通常,IS使用Internet或某些其他通信网络来变得可广泛访问,并且进一步需要支持某种形式的计算数据中心。因此,信息系统的巨大成功和快速发展导致了基础设施的大量增长。这一事实,再加上前景广阔的下一代IS的高期望,已经收紧了性能要求,并在IT基础架构中造成了许多关键问题。本文考虑了大型计算系统和网络各层中出现的一些资源控制问题。通过采取风险缓解措施,初步解决了两个安全问题。首先,针对网络拓扑分析了通过应用资源来加强易受攻击的站点和链接来控制流行病传播(即病毒和蠕虫)的恢复时间的问题。这个问题被表述为一个特征值控制问题,它允许通过凸优化构造可扩展的分布式算法。其次,在数据中心环境中研究了软件漏洞的补丁管理。与现有文献试图优化对主动攻击的防御不同,此处的目标是使用动态编程(DP)框架找到修补策略,以最小化维护操作和开发威胁造成的服务中断成本。然后将其放在各个开关组件的功耗/成本感知管理上。重新设计了完善的调度算法,以保持输入队列(IQ)交换机的功率和数据包延迟之间的平衡,从而保持其实现最大吞吐量的能力。此外,在扩展了长期的排队结果之后,通过证明“低工作量”决策在稳定性方面无关紧要,证明了功率/成本高效的控制不必在一般的队列/交换服务结构(QSSS)中缺乏此功能。解决了在计算和数据存储服务中将执行能力在线外包的问题。利用这样的事实:此类服务直到最近才可以在线获得并使用DP公式,因此可以动态优化所支持操作的成本和风险。数据存储服务中的案例研究验证了这一发现。

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