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Adaptive active queue management controller for TCP communication networks using PSO-RBF models

机译:使用PSO-RBF模型的TCP通信网络的自适应主动队列管理控制器

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Addressing performance degradations in end-to-end congestion control has been one of the most active research areas in the last decade. Active queue management (AQM) is a promising technique to congestion control for reducing packet loss and improving network utilization in transmission control protocol (TCP)/Internet protocol (IP) networks. AQM policies are those policies of router queue management that allow for the detection of network congestion, the notification of such occurrences to the hosts, and the adoption of a suitable control policy. Radial bias function (RBF)-based AQM controller is proposed in this paper. RBF as a nonlinear controller is suitable as an AQM scheme to control congestion in TCP communication networks since it has nonlinear behavior. Particle swarm optimization (PSO) algorithm is also employed to derive RBF output weights such that the integrated-absolute error is minimized. Furthermore, in order to improve the robustness of RBF controller, an error-integral term is added to RBF equation. The output weights and the coefficient of the integral error term in the latter controller are also optimized by PSO algorithm. It should be noted that in both proposed controllers the parameters of radial basis functions are selected to symmetrically partition the input space. The results of the comparison with adaptive random early detection (ARED), random exponential marking (REM), and proportional-integral (PI) controllers are presented. Integral-RBF has better performance not only in comparison with RBF but also with ARED, REM and PI controllers in the case of link utilization while packet loss rate is small.
机译:在过去的十年中,解决端到端拥塞控制中的性能下降一直是最活跃的研究领域之一。主动队列管理(AQM)是一种有前途的拥塞控制技术,可以减少数据包丢失并提高传输控制协议(TCP)/ Internet协议(IP)网络中的网络利用率。 AQM策略是路由器队列管理的策略,这些策略允许检测网络拥塞,将此类情况通知主机,并采用适当的控制策略。本文提出了一种基于径向偏置函数(RBF)的AQM控制器。作为一种非线性控制器,RBF具有非线性行为,因此适合作为AQM方案来控制TCP通信网络中的拥塞。粒子群优化(PSO)算法也用于导出RBF输出权重,从而使积分绝对误差最小。此外,为了提高RBF控制器的鲁棒性,将误差积分项添加到RBF方程中。后者控制器中的输出权重和积分误差项的系数也通过PSO算法进行了优化。应当注意,在两个提出的控制器中,选择径向基函数的参数以对称地划分输入空间。提出了与自适应随机早期检测(ARED),随机指数标记(REM)和比例积分(PI)控制器进行比较的结果。在链路利用率高且丢包率低的情况下,Integral-RBF不仅具有比RBF更好的性能,而且与ARED,REM和PI控制器相比也具有更好的性能。

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