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Linear Programming Relaxations And Marginal Productivity Index Policies For The Buffer Sharing Problem

机译:缓冲区共享问题的线性规划松弛和边际生产率指数策略

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We study the dynamic admission control for a finite shared buffer with support of multiclass traffic under Markovian assumptions. The problem is often referred to as buffer sharing in the literature. From the linear programming (LP) formulation of the continuous-time Markov decision process (MDP), we construct a hierarchy of increasingly stronger LP relaxations where the hierarchy levels equal the number of job classes. Each relaxation in the hierarchy is obtained by projecting the original achievable performance region onto a polytope of simpler structure. We propose a heuristic policy for admission control, which is based on the theory of Marginal Productivity Index (MPI) and the Lagrangian decomposition of the first order LP relaxation. The dual of the relaxed buffer space constraint in the first order LP relaxation is used as a proxy to the cost of buffer space. Given that each of the decomposed queueing admission control problems satisfies the indexability condition, the proposed heuristic accepts a new arrival if there is enough buffer space left and the MPI of the current job class is greater than the incurred cost of buffer usage. Our numerical examples for the cases of two and eight job classes show the near-optimal performance of the proposed MPI heuristic.
机译:我们研究了在马尔可夫假设下支持多类流量的有限共享缓冲区的动态准入控制。该问题在文献中通常称为缓冲区共享。根据连续时间马尔可夫决策过程(MDP)的线性规划(LP)公式,我们构造了一个层次越来越大的LP松弛的层次结构,其中层次结构级别等于作业类别的数量。通过将原始可达到的性能区域投影到结构更简单的多面体上,可以获得层次结构中的每个松弛。我们基于边际生产率指数(MPI)和一阶LP松弛的拉格朗日分解的理论,提出了一种用于启发式控制的接纳控制策略。一阶LP松弛中的松弛缓冲区空间约束的对偶用作缓冲区空间成本的代理。假定每个分解后的排队准入控制问题都满足可索引性条件,那么,如果还有足够的缓冲区空间并且当前作业类的MPI大于缓冲区使用的开销,则建议的启发式方法将接受新的到达。我们针对两个和八个工作类别的案例的数值示例显示了所提出的MPI启发式算法的最佳性能。

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