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Simulation Optimization of Practical Concurrent Service Systems

机译:实用并发服务系统的仿真优化

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Concurrent service systems are modeled using the Generalized Stochastic Petri Nets (GSPN) to account for the multiple asynchronous activities within the system. The simulated operation of the GSPN modeled system is then optimized using the Particle Swarm Optimization (PSO) meta-heuristic algorithm. The objective function consists of the service costs and the waiting costs. Service cost is the cost of hiring service-providing professionals, while waiting cost is the estimate of the loss to business as some customers might not be willing to wait for the service and may decide to go to the competing organizations. The optimization is subject to the management and to the customer satisfaction constraints. The tailor-made PSO is found to converge rapidly yielding optimum results for the operation of a practical concurrent service system.
机译:使用广义随机Petri网(GSPN)对并发服务系统进行建模,以说明系统内的多个异步活动。然后,使用粒子群优化(PSO)元启发式算法优化GSPN建模系统的仿真操作。目标函数包括服务成本和等待成本。服务成本是雇用提供服务的专业人员的成本,而等待成本是对业务损失的估计,因为某些客户可能不愿等待服务,并可能决定去竞争的组织。优化取决于管理和客户满意度约束。发现量身定制的PSO可以迅速收敛,从而为实际的并行服务系统的运行提供最佳结果。

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