A scalable solution to the multi-resource QoS problem

Chen Lee, J. Lehoczky, D. Siewiorek, R. Rajkumar, Jeffery P. Hansen
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引用次数: 249

Abstract

The problem of maximizing system utility by allocating a single finite resource to satisfy discrete Quality of Service (QoS) requirements of multiple applications along multiple QoS dimensions was studied previously. In this paper we consider the more complex problem of apportioning multiple finite resources to satisfy the QoS needs of multiple applications along multiple QoS dimensions. In other words, each application, such as video-conferencing, needs multiple resources to satisfy its QoS requirements. We evaluate and compare three strategies to solve this provably NP-hard problem. We show that dynamic programming and mixed integer programming compute optimal solutions to this problem but exhibit very long running times. We then adapt the mixed integer programming problem to yield near-optimal results with smaller running times. Finally, we present an approximation algorithm based on a local search technique that is less than 5% away from the optimal solution but which is more than two orders of magnitude faster. Perhaps more significantly, the local search technique turns out to be very scalable and robust as the number of resources required by each application increases.
多资源QoS问题的可扩展解决方案
通过分配单个有限资源来满足多个应用程序在多个QoS维度上的离散服务质量(QoS)需求,从而实现系统效用最大化。在本文中,我们考虑了一个更复杂的问题,即分配多个有限资源以满足多个应用在多个QoS维度上的QoS需求。换句话说,每个应用程序(如视频会议)都需要多个资源来满足其QoS需求。我们评估和比较了解决这个可证明np困难问题的三种策略。我们证明了动态规划和混合整数规划计算了该问题的最优解,但表现出非常长的运行时间。然后,我们调整混合整数规划问题,以更短的运行时间产生接近最优的结果。最后,我们提出了一种基于局部搜索技术的近似算法,该算法与最优解的距离小于5%,但速度超过两个数量级。也许更重要的是,随着每个应用程序所需资源数量的增加,本地搜索技术变得非常可伸缩和健壮。
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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