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Integral sliding mode controller design for congestion problem in ATM networks

机译:ATM网络中拥塞问题的集成滑模控制器设计

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摘要

A new integral sliding mode control strategy for high-speed networks operating in asynchronous transfer mode (ATM) is derived to cope with the congestion problem in network flow control. The novelty of the proposed design solution stem from allowing high-speed networks to have simultaneously acting multiple time-varying input delays, uncertainties and time-varying perturbations. A delay-dependent condition is derived via the linear matrix inequality approach that guarantees both the asymptotic stability and a prescribed H∞-performance level of the closed-loop system in sliding mode dynamics when perturbations of available bit-rate bandwidth occur. These new results are obtained with no restriction on the derivative of the time-varying delays hence are less conservative than the existing ones. This control scheme does achieve both of the main goals in ATM network traffic, namely convergence of the queue length to the desired steady-state status and the weighted fairness condition. The application to benchmark bottleneck example and the simulation results demonstrate the applicability, efficiency and robustness of the proposed synthesis method.
机译:提出了一种新的针对异步传输模式(ATM)的高速网络的整体滑模控制策略,以解决网络流量控制中的拥塞问题。所提出的设计解决方案的新颖性源于允许高速网络同时作用多个时变输入延迟,不确定性和时变扰动。通过线性矩阵不等式方法推导了与延迟有关的条件,该方法可保证当可用比特率带宽发生扰动时,在滑模动力学中闭环系统的渐近稳定性和规定的H∞性能水平。获得这些新结果时不受时变延迟的导数的限制,因此与现有方法相比不那么保守。此控制方案确实实现了ATM网络流量中的两个主要目标,即将队列长度收敛到所需的稳态状态和加权公平性条件。在基准瓶颈实例中的应用和仿真结果证明了所提综合方法的适用性,有效性和鲁棒性。

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