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首页> 外文期刊>International Journal of Production Research >A bi-objective stochastic programming model for optimising automated material handling systems with reliability considerations
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A bi-objective stochastic programming model for optimising automated material handling systems with reliability considerations

机译:考虑可靠性考虑的用于优化自动化物料搬运系统的双目标随机规划模型

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摘要

The optimisation of material handling systems (MHSs) can lead to substantial cost reductions in manufacturing systems. Choosing adequate and relevant performance measures is critical in accurately evaluating MHSs. The majority of performance measures used in MHSs are time-based. However, moving materials within a manufacturing system utilise time and cost. In this study, we consider both time and cost measures in an optimisation model used to evaluate an MHS with automated guided vehicles. We take into account the reliability of the MHSs because of the need for steadiness and stability in the automated manufacturing systems. Reliability is included in the model as a cost function. Furthermore, we consider bi-objective stochastic programming to optimise the time and cost objectives because of the uncertainties inherent in the optimisation parameters in real-world problems. We use perception neural networks to transform the bi-objective optimisation model into a single objective model. We use numerical experiments to demonstrate the applicability of the proposed model and exhibit the efficacy of the procedures and algorithms.
机译:物料搬运系统(MHS)的优化可以大大降低制造系统的成本。选择适当和相关的绩效指标对于准确评估MHS至关重要。 MHS中使用的大多数绩效指标都是基于时间的。但是,在制造系统内移动材料会浪费时间和成本。在这项研究中,我们在优化模型中同时考虑了时间和成本措施,该模型用于评估带有自动导引车的MHS。我们考虑到MHS的可靠性,因为需要自动化制造系统中的稳定性和稳定性。可靠性作为成本函数包含在模型中。此外,由于现实问题中优化参数所固有的不确定性,我们考虑采用双目标随机规划来优化时间和成本目标。我们使用感知神经网络将双目标优化模型转换为单个目标模型。我们使用数值实验来证明所提出的模型的适用性,并展示了程序和算法的有效性。

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