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首页> 外文期刊>Simulation modelling practice and theory: International journal of the Federation of European Simulation Societies >A biased-randomized simheuristic for the distributed assembly permutation flowshop problem with stochastic processing times
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A biased-randomized simheuristic for the distributed assembly permutation flowshop problem with stochastic processing times

机译:具有随机处理时间的分布式组件置换流出问题的偏置随机性血腥问题

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摘要

Modern manufacturing systems are composed of several stages. We consider a manufacturing environment in which different parts of a product are completed in a first stage by a set of distributed flowshop lines, and then assembled in a second stage. This is known as the distributed assembly permutation flowshop problem (DAPFSP). This paper studies the stochastic version of the DAPFSP, in which processing and assembly times are random variables. Besides minimizing the expected makespan, we also discuss the need for considering other measures of statistical dispersion in order to account for risk. A hybrid algorithm is proposed for solving this NP-hard and stochastic problem. Our approach integrates biased randomization and simulation techniques inside a metaheuristic framework. A series of computational experiments contribute to illustrate the effectiveness of our approach. (C) 2017 Elsevier B.V.All rights reserved.
机译:现代制造系统由几个阶段组成。 我们考虑一个制造环境,其中产品的不同部分在第一阶段完成了一组分布式流线,然后在第二阶段组装。 这被称为分布式组件置换流程问题(DAPFSP)。 本文研究了DAPFSP的随机版本,其中处理和装配时间是随机变量。 除了最大限度地减少预期的MPESPAN外,我们还讨论了考虑到其他统计分散措施的需要,以便考虑风险。 提出了一种用于解决这种NP硬度和随机问题的混合算法。 我们的方法集成了偏置的随机化和仿真技术在成群质区框架内。 一系列计算实验有助于说明我们方法的有效性。 (c)2017年Elsevier B.V.所有权利保留。

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