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Study of stochastic sequence-dependent flexible flow shop via developing a dispatching rule and a hybrid GA

机译:通过制定调度规则和混合遗传算法研究随机序列相关的柔性流水车间

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A flexible flow shop is a generalized flow shop with multiple machines in some stages. This system is fairly common in flexible manufacturing and in process industry. In most practical environments, scheduling is an ongoing reactive process where the presence of real time information continually forces reconsideration of pre-established schedules. This paper studies a flexible flow shop system considering non-deterministic and dynamic arrival of jobs and also sequence dependent setup times. The problem objective is to determine a schedule that minimizes average tardiness of jobs. Since the problem class is NP-hard, a novel dispatching rule and hybrid genetic algorithm have been developed to solve the problem approximately. Moreover, a discrete event simulation model of the problem is developed for the purpose of experimentation. The most commonly used dispatching rules from the literature and two new methods presented in this paper are incorporated in the simulation model. Simulation experiments have been conducted under various experimental conditions characterized by factors such as shop utilization, setup time level and number of stages. The results indicate that methods proposed in this study are much better than the traditional dispatching rules.
机译:柔性流水车间是在某些阶段具有多台机器的广义流水车间。该系统在柔性制造和过程工业中相当普遍。在大多数实际环境中,调度是一个持续的反应过程,其中实时信息的存在会不断迫使重新考虑预先建立的调度。本文研究了一种灵活的流水作业系统,该系统考虑了作业的不确定性和动态到达以及依赖序列的建立时间。问题的目标是确定使工作平均拖延最小的时间表。由于问题类别为NP-hard,因此开发了一种新颖的调度规则和混合遗传算法来近似解决该问题。此外,出于实验目的,开发了该问题的离散事件模拟模型。仿真模型中结合了文献中最常用的调度规则和本文介绍的两种新方法。已经在各种实验条件下进行了仿真实验,这些条件的特征在于诸如车间利用率,设置时间水平和阶段数等因素。结果表明,本研究提出的方法比传统的调度规则要好得多。

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