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Delayed stability and performance of distributed congestion control

机译:分布式拥塞控制的延迟稳定性和性能

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Recent research efforts to design better Internet transport protocols combined with scalable Active Queue Management (AQM) have led to significant advances in congestion control. One of the hottest topics in this area is the design of discrete congestion control algorithms that are asymptotically stable under heterogeneous feedback delay and whose control equations do not explicitly depend on the RTTs of end-flows. In this paper, we show that max-min fair congestion control methods with a stable symmetric Jacobian remain stable under arbitrary feedback delay (including heterogeneous directional delays) and that the stability condition of such methods does not involve any of the delays. To demonstrate the practicality of the obtained result, we change the original controller in Kelly's work [14] to become robust under random feedback delay and fixed constants of the control equation. We call the resulting framework Max-min Kelly Control (MKC) and show that it offers smooth sending rate, exponential convergence to efficiency, and fast convergence to fairness, all of which make it appealing for future high-speed networks.
机译:设计更好的Internet传输协议与可伸缩的主动队列管理(AQM)相结合的最新研究成果已导致拥塞控制方面的重大进步。该领域最热门的主题之一是离散拥塞控制算法的设计,该算法在异构反馈延迟下是渐近稳定的,并且其控制方程式并不明确取决于端流的RTT。在本文中,我们证明了具有稳定对称雅可比矩阵的最大-最小公平拥塞控制方法在任意反馈延迟(包括异构方向性延迟)下均保持稳定,并且此类方法的稳定性条件不涉及任何延迟。为了证明所获得结果的实用性,我们将Kelly [14]中的原始控制器更改为在随机反馈延迟和控制方程的固定常数下变得鲁棒。我们称这样的框架为最大最小凯利控制(MKC),并表明它提供了平稳的发送速率,对效率的指数收敛以及对公平性的快速收敛,所有这些都使其对于未来的高速网络具有吸引力。

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