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A robust optimization model for stochastic aggregate production planning

机译:随机总体生产计划的鲁棒优化模型

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The aggregate production planning (APP) problem considers the medium-term production loading plans subject to certain restrictions such as production capacity and workforce level. It is not uncommon for management to often encounter uncertainty and noisy data, in which the variables or parameters are stochastic. In this paper, a robust optimization model is developed to solve the aggregate production planning problems in an environment of uncertainty in which the production cost, labour cost, inventory cost, and hiring and layoff cost are minimized. By adjusting penalty parameters, decision-makers can determine an optimal medium-term production strategy including production loading plan and workforce level while considering different economic growth scenarios. Numerical results demonstrate the robustness and effectiveness of the proposed model. The proposed model is realistic for dealing with uncertain economic conditions. The analysis of the tradeoff between solution robustness and model robustness is also presented.
机译:总生产计划(APP)问题考虑了中期生产装载计划,该计划受到某些限制,例如生产能力和劳动力水平。管理人员经常遇到不确定性和嘈杂数据,其中变量或参数是随机的,这种情况并不罕见。本文提出了一种鲁棒的优化模型,以解决不确定性环境下的总生产计划问题,在该环境中,生产成本,人工成本,库存成本以及雇用和解雇成本最小化。通过调整惩罚参数,决策者可以在考虑不同的经济增长方案的同时,确定最佳的中期生产策略,包括生产负荷计划和劳动力水平。数值结果证明了该模型的鲁棒性和有效性。所提出的模型对于处理不确定的经济状况是现实的。还介绍了解决方案鲁棒性和模型鲁棒性之间的权衡分析。

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