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Dynamic load balancing in parallel queueing systems: Stability and optimal control
Institution:1. Department of Computing and Software, McMaster University, 1280 Main Street West, Hamilton, ON, Canada L8S 4L7;2. Department of Industrial and Engineering Operations, University of Michigan, 1205 Beal Avenue, Ann Arbor, MI 48109-2117, USA;1. Department of Information Engineering, Hiroshima University, 4-1 Kagamiyama 1 Chome 739-8527, Higashi-Hiroshima, Japan;2. Department of Mathematical Sciences, Nanzan University, Japan;3. Universite de Techologie de Compiegne, Compiegne, France;1. Department of Physics, University of North Bengal, Siliguri 734013, West Bengal, India;2. Department of Computer and Information Sciences, SUNY at Fredonia, NY 14063, USA
Abstract:We consider a system of parallel queues with dedicated arrival streams. At each decision epoch a decision-maker can move customers from one queue to another. The cost for moving customers consists of a fixed cost and a linear, variable cost dependent on the number of customers moved. There are also linear holding costs that may depend on the queue in which customers are stored. Under very mild assumptions, we develop stability (and instability) conditions for this system via a fluid model. Under the assumption of stability, we consider minimizing the long-run average cost. In the case of two-servers the optimal control policy is shown to prefer to store customers in the lowest cost queue. When the inter-arrival and service times are assumed to be exponential, we use a Markov decision process formulation to show that for a fixed number of customers in the system, there exists a level S such that whenever customers are moved from the high cost queue to the low cost queue, the number of customers moved brings the number of customers in the low cost queue to S. These results lead to the development of a heuristic for the model with more than two servers.
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