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Layered Multicast Rate Control Based on Lagrangian Relaxation and Dynamic Programming

机译:基于拉格朗日松弛和动态规划的分层组播速率控制

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摘要

In this paper, we address the rate control problem for layered multicast traffic, with the objective of solving a generalized throughput/fairness objective. Our approach is based on a combination of Lagrangian relaxation and dynamic programming. Unlike previously proposed dual-based approaches, the algorithm presented in this paper scales well as the number of multicast groups in the network increases. Moreover, unlike all existing approaches, our approach takes into account the discreteness of the receiver rates that is inherent to layered multicasting. We show analytically that our algorithm converges and yields rates that are approximately optimal. Simulations carried out in an asynchronous network environment demonstrate that our algorithm exhibits good convergence speed and minimal rate fluctuations.
机译:在本文中,我们解决分层组播流量的速率控制问题,以解决广义的吞吐量/公平性目标。我们的方法基于拉格朗日松弛和动态规划的结合。与以前提出的基于双重方法的方法不同,本文提出的算法可以随着网络中多播组数量的增加而扩展。而且,与所有现有方法不同,我们的方法考虑了分层多播固有的接收器速率的离散性。我们通过分析表明,我们的算法收敛并产生近似最佳的速率。在异步网络环境中进行的仿真表明,我们的算法具有良好的收敛速度和最小的速率波动。

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