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Scheduling control for Markov-modulated single-server multiclass queueing systems in heavy traffic

机译:交通拥挤的Markov调制单服务器多类排队系统的调度控制

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This paper studies a scheduling control problem for a single-server multiclass queueing network in heavy traffic, operating in a changing environment. The changing environment is modeled as a finite-state Markov process that modulates the arrival and service rates in the system. Various cases are considered: fast changing environment, fixed environment, and slowly changing environment. In all cases, the arrival rates are environment dependent, whereas the service rates are environment dependent when the environment Markov process is changing fast, and are assumed to be constant in the other two cases. In each of the cases, using weak convergence analysis, in particular functional limit theorems for Poisson processes and ergodic Markov processes, it is shown that an appropriate "averaged" version of the classical cμ-policy (the priority policy that favors classes with higher values of the product of holding cost c and service rate μ) is asymptotically optimal for an infinite horizon discounted cost criterion.
机译:本文研究了在不断变化的环境中运行的单服务器多类排队网络在繁忙流量中的调度控制问题。不断变化的环境被建模为有限状态马尔可夫过程,该过程对系统中的到达率和服务速率进行调制。考虑各种情况:快速变化的环境,固定的环境和缓慢变化的环境。在所有情况下,到达率都与环境有关,而当环境马尔可夫过程快速变化时,服务率与环境有关,在其他两种情况下,假定到达率是恒定的。在每种情况下,使用弱收敛分析,尤其是泊松过程和遍历马尔可夫过程的功能极限定理,都表明了经典的cμ策略的适当“平均”版本(优先级策略偏爱具有较高价值的类对于无限远期折现成本准则,持有成本c和服务费率μ)的乘积的渐近最优。

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