Network-Constrained Packing of Brokered Workloads in Virtualized Environments

Christine Bassem, Azer Bestavros
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引用次数: 6

Abstract

Providing resource allocation with performance predictability guarantees is increasingly important in cloud platforms, especially for data-intensive applications, for which performance depends greatly on the available rates of data transfer between the various computing/storage hosts underlying the virtualized resources assigned to the application. Existing resource allocation solutions either assume that applications manage their data transfer between their virtualized resources, or that cloud providers manage their internal networking resources. With the increased prevalence of brokerage services in cloud platforms, there is a need for resource allocation solutions that provide predictability guarantees in such settings, in which neither application scheduling nor cloud provider resources cane managed/controlled by the broker. This paper addresses this problem, as we define the Network-Constrained Packing (NCP)problem of finding the optimal mapping of brokered resources to applications with guaranteed performance predictability. We prove that NCP is NP-hard, and we define two special instances of the problem, for which exact solutions can be found efficiently. We develop a greedy heuristic to solve the general instance of thence problem, and we evaluate its efficiency using simulations on various application workloads, and network models.
虚拟化环境中代理工作负载的网络约束包装
在云平台中,提供具有性能可预测性保证的资源分配越来越重要,特别是对于数据密集型应用程序,因为这些应用程序的性能在很大程度上取决于分配给应用程序的虚拟化资源底层的各种计算/存储主机之间的可用数据传输速率。现有的资源分配解决方案要么假设应用程序管理其虚拟化资源之间的数据传输,要么假设云提供商管理其内部网络资源。随着代理服务在云平台中的日益普及,需要在这种设置中提供可预测性保证的资源分配解决方案,在这种设置中,应用程序调度和云提供商资源都不能由代理管理/控制。本文解决了这个问题,因为我们定义了网络约束包装(NCP)问题,即寻找具有保证性能可预测性的代理资源到应用程序的最佳映射。我们证明了NCP是np困难的,并定义了两个可以有效地找到精确解的特殊实例。我们开发了一种贪心启发式算法来解决一般的贪心启发式问题,并通过对各种应用程序工作负载和网络模型的模拟来评估其效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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