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Simulation-based optimization approach with scenario-based product sequence in a reconfigurable manufacturing system (RMS): A case study

机译:可重构制造系统(RMS)中基于仿真的优化方法和基于场景的产品序列的案例研究

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In this study, we consider a production planning and resource allocation problem of a Reconfigurable Manufacturing System (RMS). Four general scenarios are considered for the product arrival sequence. The objective function aims to minimize total completion time of jobs. For a given set of input parameters defined by the market, we want to find the best configuration for the production line with respect to the number of resources and their allocation on workstations. In order to solve the problem, a hybridization approach based on simulation and optimization (Sim-Opt) is proposed. In the simulation phase, a Discrete Event Simulation (DES) model is developed. On the other hand, a simulated annealing (SA) algorithm is developed in Python to optimize the solution. In this approach, the results of the optimization feed the simulation model. On the other side, performance of these solutions are copied from simulation model to the optimization model. The best solution with the best performance can be achieved by this manually cyclic approach. The proposed approach is applied on a real case study from the automotive industry.
机译:在这项研究中,我们考虑了可重构制造系统(RMS)的生产计划和资源分配问题。产品到达顺序考虑了四个一般方案。目标功能旨在最大程度地减少工作的总完成时间。对于市场定义的给定输入参数集,我们希望针对资源数量及其在工作站上的分配,找到生产线的最佳配置。为了解决该问题,提出了一种基于仿真和优化的混合方法(Sim-Opt)。在仿真阶段,开发了离散事件仿真(DES)模型。另一方面,在Python中开发了一种模拟退火(SA)算法来优化解决方案。在这种方法中,优化结果将馈入仿真模型。另一方面,将这些解决方案的性能从仿真模型复制到优化模型。通过这种手动循环方法可以实现具有最佳性能的最佳解决方案。所提出的方法已应用于汽车行业的实际案例研究中。

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