以流量负荷为拥塞指标的显式速率ABR方案

F. Chiussi, A. Arulambalam, Ye Xia, Xiaoqiang Chen
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引用次数: 12

摘要

可用比特率(ABR)服务拥塞控制中的一个核心问题是计算网络中每个交换节点上每个连接的公平份额。一类重要的开关行为算法根据最大最小公平性的确切定义计算公平份额,并将其作为传递给源的显式速率。由于跟踪活动连接的复杂任务,这些算法可能会遇到困难。此外,由于这些方案平等地对待所有连接,当网络中存在开关源时,它们会导致链路容量利用率不足。为了避免这些缺点,有人建议在设置显式速率时使用流量负载来校正计算的公平份额。在本文中,我们首先证明了使用文献中建议的流量负载固有地干扰了速率分配,并且使方案对连接的往返延迟敏感,从而导致不公平。然后,我们引入了一种称为增强的快速最大最小速率分配(E-FMMRA)算法,该算法通过跟踪所有反向RM单元的最大显式速率来解决问题。E-FMMRA中使用的相同技术也可以应用于流行的显式速率指示避免拥塞(ERICA)方案,以解决与使用交通负载相关的类似问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Explicit rate ABR schemes using traffic load as congestion indicator
A central issue in congestion control for available bit rate (ABR) services is the computation of the fair share for every connection at each switching node in the network. An important class of algorithms for the switch behavior computes the fair share according to the exact definition of max-min fairness, and uses it as the explicit rate conveyed to the sources. These algorithms may encounter difficulties due to the complex task of keeping track of active connections. In addition, since these schemes treat all connections equally, they lead to under-utilization of the link capacity when on-off sources are present in the network. To obviate these shortcomings, it has been proposed to use the traffic load to correct the computed fair share when setting the explicit rate. In this paper, first we show that using the traffic load as suggested in literature inherently perturbs rate allocation, and makes the schemes sensitive to the round-trip delay of the connections, leading to unfairness. Then, we introduce a scheme called the enhanced fast max-min rate allocation (E-FMMRA) algorithm, which solves the problem by keeping track of the maximum explicit rate over all backward RM cells. The same technique used in E-FMMRA can also be applied to the popular explicit rate indication for congestion avoidance (ERICA) scheme to solve similar problems associated with the use of the traffic load.
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