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An Adaptive Genetic Algorithm Based Approach for Production Reactive Scheduling of Manufacturing Systems

机译:一种基于自适应遗传算法的制造系统生产无功调度方法

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The problem for scheduling the manufacturing systems production involves the system modeling task and the application of a technique to solve it. There are several ways used to model the scheduling problem and search strategies have been applied on the models to find a solution. The solutions consider performance parameters like makespan. However, depending on the size and complexity of the system, the response time becomes critical, mostly when it's necessary to reschedule. Researches aim to use Genetic Algorithms as a search method to solve the scheduling problem. This paper proposes the use of Adaptive Genetic Algorithm (AGA) to solve this problem having as performance criteria the minimum makespan and the response time. The probability of crossover and mutation is dynamically adjusted according to the individual's fitness value. The proposed approach is compared with a traditional Genetic Algorithm (GA).
机译:调度制造系统生产的问题涉及系统建模任务和应用解决方法的应用。有几种方法用于建模调度问题,并且在模型上应用了搜索策略以找到解决方案。该解决方案考虑MakEspan等性能参数。但是,根据系统的尺寸和复杂性,响应时间变得至关重要,主要是在重新安排时。研究旨在使用遗传算法作为解决调度问题的搜索方法。本文提出了使用自适应遗传算法(AGA)来解决这个问题,具有最小的Makespan和响应时间。交叉和突变的概率根据个体的健身值动态调整。将所提出的方法与传统的遗传算法(GA)进行比较。

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