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Statistical Detection of Congestion in Routers

机译:路由器拥塞的统计检测

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摘要

Detection of congestion plays a key role in numerous networking protocols, including those driving active queue management (AQM) methods used in congestion control in Internet routers. This paper exploits the rich theory of statistical detection theory to develop simple detection mechanisms that can further enhance current AQM methods. The detection of congestion is performed using a maximum-likelihood ratio test (MLRT), which reveals that the likelihood of congestion grows exponentially with the queue occupancy level. Performance evaluation of the likelihood detector shows it is robust to variations of the network parameters. The mathematical expression of the likelihood of congestion depends on the router's current dropping rate, its desired queue occupancy level, and the current queue occupancy. When incorporated into random early marking (REM) and random early detection (RED), the likelihood-ratio-based detection considerably improves their reaction time and reduces the variance of queue occupancy values.
机译:拥塞检测在许多网络协议中起着关键作用,包括那些驱动主动队列管理(AQM)方法的方法,该方法用于Internet路由器的拥塞控制中。本文利用丰富的统计检测理论来开发简单的检测机制,以进一步增强当前的AQM方法。使用最大似然比测试(MLRT)进行拥塞检测,这表明拥塞的可能性随队列占用水平呈指数增长。对似然检测器的性能评估表明,它对网络参数的变化具有鲁棒性。拥塞可能性的数学表达式取决于路由器的当前丢弃率,其所需的队列占用级别和当前队列占用率。如果将其纳入随机早期标记(REM)和随机早期检测(RED)中,则基于似然比的检测可显着改善其反应时间并减少队列占用值的差异。

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