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Facility layout design using a multi-objective interactive genetic algorithm to support the DM

机译:使用多目标交互式遗传算法支持DM的设施布局设计

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摘要

The unequal area facility layout problem (UA-FLP) has been addressed by many methods. Most of them only take aspects that can be quantified into account. This contribution presents a novel approach, which considers both quantitative aspects and subjective features. To this end, a multi-objective interactive genetic algorithm is proposed with the aim of allowing interaction between the algorithm and the human expert designer, normally called the decision maker (DM) in the field of UA-FLP. The contribution of the DM's knowledge into the approach guides the complex search process, adjusting it to the DM's preferences. The entire population associated to facility layout designs is evaluated by quantitative criteria in combination with an assessment prepared by the DM, who gives a subjective evaluation for a set of representative individuals of the population in each iteration. In order to choose these individuals, a soft computing clustering method is used. Two interesting real-world data sets are analysed to empirically probe the robustness of these models. The first UA-FLP case study describes an ovine slaughterhouse plant and the second, a design for recycling carton plant. Relevant results are obtained, and interesting conclusions are drawn from the application of this novel intelligent framework.
机译:不平等区域设施布局问题(UA-FLP)已通过许多方法解决。它们中的大多数仅考虑可以量化的方面。该贡献提出了一种新颖的方法,该方法同时考虑了定量方面和主观特征。为此,提出了一种多目标交互式遗传算法,其目的是允许该算法与人类专家设计人员(通常称为UA-FLP领域的决策者(DM))进行交互。 DM知识对方法的贡献指导了复杂的搜索过程,并根据DM的偏好进行了调整。通过定量标准与DM进行的评估相结合,对与设施布局设计相关的整个人口进行评估,DM会在每次迭代中对一组人口中具有代表性的个体进行主观评估。为了选择这些个体,使用了一种软计算聚类方法。分析了两个有趣的现实世界数据集,以凭经验探究这些模型的鲁棒性。第一个UA-FLP案例研究描述了一个绵羊屠宰场工厂,第二个研究了一个回收纸箱工厂的设计。获得了相关结果,并从该新颖的智能框架的应用中得出了有趣的结论。

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