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Using auto-tuning proportional integral probability to improve random early detection

机译:使用自动调整比例积分概率来改善随机早期检测

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Random early detection (RED), a well-known active queue management (AQM) scheme, has been popularly deployed by many router vendors. But RED is very sensitive to traffic load and parameter configuration, and its equilibrium queue length varies greatly with the congestion degree and parameter settings. To solve the above problems, this paper proposes improved RED (named IRED) by using auto-tuning proportional integral (PI) probability. An adaptation mechanism is designed to adjust the maximum packet marking probability for stable average queue length. The key concept is that when the traffic load changes and the queue length deviates from the target value, we adjust the maximum packet marking probability to drive the queue length to the target, which meets the goal of AQM design. Extensive simulations are conducted to verify the validity of IRED. The results confirm that IRED is superior to RED and its variant in terms of stability and robustness. IRED is not sensitive to traffic loads and can maintain stable average queue length in spite of congestion degrees. In addition, IRED makes very few changes to the RED algorithm, and overcomes the RED's shortcomings without introducing extra variable or much overhead.
机译:随机早期检测(红色)是一个着名的活动队列管理(AQM)方案,已被许多路由器供应商普遍部署。但红色对流量负载和参数配置非常敏感,其平衡队列长度随着拥塞程度和参数设置而变化很大。为了解决上述问题,本文通过使用自动调整比例积分(PI)概率来提出改进的红色(命名为命名)。适配机制旨在调整稳定平均队列长度的最大分组标记概率。关键概念是,当流量负载的变化和队列长度偏离目标值时,我们调整最大分组标记概率以驱动到目标的队列长度,这符合AQM设计的目标。进行广泛的模拟以验证红外人的有效性。结果证实,在稳定性和稳健性方面,IRED优于红色及其变体。由于拥挤程度,IRED对交通负荷不敏感,并且可以保持稳定的平均队列长度。此外,红外人对红算法进行了很少的变化,并克服了红色的缺点,而不会引入额外的变量或太多。

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