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An estimation of distribution algorithm for scheduling problem of flexible manufacturing systems using Petri nets

机译:基于Petri网的柔性制造系统调度问题的分布算法估计

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HighlightsThis is the first report on applying estimation of distribution algorithm (EDA) to the studied problem.A kind of PN-based deadlock controllers for FMSs is imbedded to exclude infeasible individuals.An effective voting procedure is adopted to construct the probabilistic model of EDA.The longest common subsequence is also embedded in the model for mining excellent genes.A new modified variable neighborhood search is developed as an efficiency enhancement of EDA.AbstractBased on the place-timed Petri net models of flexible manufacturing systems (FMSs), this paper proposes a novel effective estimation of distribution algorithm (EDA) for solving the scheduling problem of FMSs. A candidate solution is represented as an individual with two sections: the first contains the route information while the second is a permutation with repetition for parts. The feasibility of individuals is checked and guaranteed by a highly permissiveness deadlock controller. A feasible individual is interpreted into a deadlock-free schedule while the infeasible ones are amended. The probabilistic model in EDA is constructed via a voting procedure. An offspring individual is then produced based on the model from a seed individual, and the set of seed individuals is extracted by a roulette method from the current population. The longest common subsequence is also embedded into the probabilistic model for mining good genes. A modified variable neighborhood search is applied on offspring individuals to obtain better solutions in their neighbors and hence to improve EDA’s performance. Computational results show that our proposed algorithm outperforms all the existing ones on benchmark examples for the studied problem. It is of important practice significance for the manufacturing of time-critical and multi-type products.
机译: 突出显示 这是有关将分布估计算法(EDA)应用于研究问题的第一份报告。 < ce:list-item id =“ celistitem0002”> 嵌入了一种用于FMS的基于PN的死锁控制器排除不可行的人。 采用有效的投票程序来构建EDA的概率模型。 最长的公共子序列也嵌入到用于挖掘优秀基因的模型中。 随着 摘要 基于柔性制造系统(FMS)的放置时间Petri网模型,本文提出了一种新颖的有效估计分配算法(EDA)来解决FMS的调度问题。候选解决方案用两个部分表示为一个个体:第一个部分包含路线信息,第二个部分是部分重复的排列。高度宽松的死锁控制器检查并保证了个人的可行性。一个可行的人被解释为无死锁的时间表,而对不可行的人进行修正。 EDA中的概率模型是通过投票程序构建的。然后根据模型从种子个体中产生后代个体,并通过轮盘赌方法从当前种群中提取种子个体集合。最长的公共子序列也被嵌入到概率模型中以挖掘良好的基因。对子孙后代进行了改进的可变邻域搜索,以在其邻居中获得更好的解决方案,从而提高EDA的性能。计算结果表明,在所研究问题的基准示例中,我们提出的算法优于所有现有算法。这对于生产时间紧迫的多类型产品具有重要的实践意义。

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