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Mixed-integer linear programming and constraint programming formulations for solving distributed flexible job shop scheduling problem

机译:用于解决分布式柔性作业车间调度问题的混合整数线性规划和约束规划公式

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This paper intends to address the distributed flexible job shop scheduling problem (DFJSP) with minimizing maximum completion time (makespan). In order to solve this problem, we propose four mixed integer linear programming (MILP) models as well as a constraint programming (CP) model, among which four MILP models are formulated based on four different modeling ideas. MILP models are effective in solving small-scaled problems to optimality. DFJSP is NP-hard, therefore, we propose an efficient constraint programming (CP) model based on interval decision variables and domain filtering algorithms. Numerical experiments are conducted to evaluate the performance of the proposed MILP models and CP model. The results show that the sequence-based MILP model is the most efficient one, and the proposed CP model is effective in finding good quality solutions for the both the small-sized and large-sized instances. The CP model incomparably outperforms the state-of-the-art algorithms and obtains new best solutions for 11 benchmark problems. Moreover, the best MILP model and CP model have proved the optimality of 62 best-known solutions.
机译:本文旨在通过最小化最大完成时间(makespan)来解决分布式柔性作业车间调度问题(DFJSP)。为了解决这个问题,我们提出了四个混合整数线性规划(MILP)模型和一个约束规划(CP)模型,其中基于四个不同的建模思想制定了四个MILP模型。 MILP模型可以有效地解决小规模问题,达到最优。 DFJSP具有NP难性,因此,我们基于区间决策变量和域过滤算法提出了一种有效的约束规划(CP)模型。进行了数值实验,以评估所提出的MILP模型和CP模型的性能。结果表明,基于序列的MILP模型是最有效的模型,所提出的CP模型对于找到小型实例和大型实例的高质量解决方案都是有效的。 CP模型无与伦比地胜过最新算法,并为11个基准问题提供了新的最佳解决方案。此外,最佳的MILP模型和CP模型已经证明了62种最著名解决方案的最优性。

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