基于测量的流量感知网络准入控制

Yuming Jiang, P. Emstad, Anne Nevin, Victor Nicola, Markus Fidler
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引用次数: 28

摘要

为了提供统计服务保障和实现高网络利用率,基于测量的准入控制(MBAC)已经研究了十多年。文献中已经提出了许多MBAC算法。然而,它们大多属于聚合MBAC算法,这些算法假设或要求:(1)使用先进先出(FIFO)来聚合流;(二)对流入总量提供统计服务保障;(3)每个流需要并经历与聚合相同的统计服务保证。在本文中,我们关注的是每流MBAC,它旨在为聚合中的单个流提供可能不同的统计服务保证。特别地,我们提出了一种简单的逐流MBAC算法,该算法采用动态优先级调度(DPS)对流进行聚合。使用基于dps的逐流MBAC算法,新接收的流总是被赋予比所有现有流更低的优先级,如果现有流离开系统,其优先级将得到提高。因此,一旦流被接纳,它所接收的服务将不会受到在它之后接纳的其他流的不利影响。因此,不需要重新检查或调整由于接纳新流而分配给现有流的网络资源。
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Measurement-based admission control for a flow-aware network
To provide statistical service guarantee and achieve high network utilization, measurement-based admission control (MBAC) has been studied for over one decade. Many MBAC algorithms have been proposed in the literature. However, most of them belong to aggregate MBAC algorithms which assume or require that (1) first-in-first-out (FIFO) is used for aggregating flows; (2) statistical service guarantees are provided to the aggregate of admitted flows; (3) each flow requires and experiences the same statistical service guarantees as the aggregate. In this paper, we focus on per-flow MBAC that aims to provide possibly different statistical service guarantees to individual flows in an aggregate. Particularly, we propose a simple per-flow MBAC algorithm in which dynamic priority scheduling (DPS) is adopted to aggregate flows. With this DPS-based per-flow MBAC algorithm, a newly admitted flow is always given a lower priority level than all existing flows, and its priority level is improved if an existing flow leaves the system. Consequently, once a flow is admitted, its received service will not be adversely affected by other flows admitted after it. Because of this, there is no need to re-check or adjust network resources allocated to existing flows due to the admission of a new flow.
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