首页> 外文期刊>Journal of Applied Probability >ASYMPTOTIC FLUID OPTIMALITY AND EFFICIENCY OF THE TRACKING POLICY FOR BANDWIDTH-SHARING NETWORKS
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ASYMPTOTIC FLUID OPTIMALITY AND EFFICIENCY OF THE TRACKING POLICY FOR BANDWIDTH-SHARING NETWORKS

机译:带宽共享网络的渐近流体最优性和跟踪策略的效率

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摘要

Optimal control of stochastic bandwidth-sharing networks is typically difficult. In order to facilitate the analysis, deterministic analogues of stochastic bandwidth-sharing networks, the so-called fluid models, are often taken for analysis, as their optimal control can be found more easily. The tracking policy translates the fluid optimal control policy back to a control policy for the stochastic model, so that the fluid optimality can be achieved asymptotically when the stochastic model is scaled properly. In this work we study the efficiency of the tracking policy, that is, how fast the fluid optimality can be achieved in the stochastic model with respect to the scaling parameter. In particular, our result shows that, under certain conditions, the tracking policy can be as efficient as feedback policies.
机译:通常很难对随机带宽共享网络进行最佳控制。为了促进分析,经常采用随机带宽共享网络的确定性类似物(所谓的流体模型)进行分析,因为可以更轻松地找到它们的最佳控制。跟踪策略将流体最优控制策略转换回随机模型的控制策略,因此,当随机模型进行适当缩放时,可以渐近实现流体最优性。在这项工作中,我们研究了跟踪策略的效率,即相对于缩放参数,在随机模型中可以实现流体最优性的速度有多快。特别是,我们的结果表明,在某些条件下,跟踪策略可以与反馈策略一样有效。

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