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首页> 外文期刊>International Journal of Production Research >Multi-objective sustainable process plan generation in a reconfigurable manufacturing environment: exact and adapted evolutionary approaches
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Multi-objective sustainable process plan generation in a reconfigurable manufacturing environment: exact and adapted evolutionary approaches

机译:可重新配置的制造环境中的多目标可持续流程计划:精确和适应的进化方法

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Achieving competitiveness in nowadays manufacturing market goes through being cost and time-efficient as well as environmentally harmless. Reconfigurable manufacturing system (RMS) is a paradigm that is able to meet these challenges due to its scalability and integrability. In this paper, we aim to solve the multi-objective sustainable process plan generation problem in a reconfigurable environment. In addition to the total production cost and the completion time, we use the amount of greenhouse gases (GHG) emitted during the manufacturing process as a sustainability criterion. We propose an iterative multi-objective integer linear programming (I-MOILP) approach and its comparison with adapted versions of the two well-known evolutionary algorithms, respectively, the Archived Multi-Objective Simulated Annealing (AMOSA) and the Non-dominated Sorting Genetic Algorithm (NSGA-II). Moreover, we study the influence of the probabilities of genetic operators on the convergence of the adapted NSGA-II. To illustrate the applicability of the three approaches, an example is presented and obtained numerical results analysed.
机译:在当今制造市场实现竞争力,经历了成本和时效和环境无害。可重新配置的制造系统(RMS)是一种范式,可以通过其可扩展性和可积性来满足这些挑战。在本文中,我们的目标是解决可重新配置环境中的多目标可持续流程计划生成问题。除了总生产成本和完井时,我们还使用制造过程中排放的温室气体(GHG)作为可持续性标准。我们提出了一种迭代的多目标整数线性规划(I-Moilp)方法,其与两个公知的进化算法的适应版本的比较,分别是存档的多目标模拟退火(Amosa)和非主导的分类遗传算法算法(NSGA-II)。此外,我们研究了遗传算子概率对适应NSGA-II的收敛性的影响。为了说明三种方法的适用性,提出并获得了分析的数值结果。

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