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An effective estimation of distribution algorithm for the flexible job-shop scheduling problem with fuzzy processing time

机译:具有模糊处理时间的柔性作业车间调度问题的分布算法有效估计

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摘要

Considering the fuzzy nature of the data in real-world scheduling, an effective estimation of distribution algorithm (EDA) is proposed to solve the flexible job-shop scheduling problem with fuzzy processing time. A probability model is presented to describe the probability distribution of the solution space. A mechanism is provided to update the probability model with the elite individuals. By sampling the probability model, new individuals can be generated among the search region with promising solutions. Moreover, a left-shift scheme is employed for improving schedule solution when idle time exists on the machine. In addition, some fuzzy number operations are used to calculate scheduling objective value. The influence of parameter setting is investigated based on the Taguchi method of design of experiment, and a suitable parameter setting is suggested. Numerical testing results and comparisons with some existing algorithms are provided, which demonstrate the effectiveness of the proposed EDA.
机译:考虑到实际调度中数据的模糊性,提出了一种有效的分配算法估计算法,以解决具有模糊处理时间的柔性作业车间调度问题。提出了一个概率模型来描述解空间的概率分布。提供了一种机制来与精英个人一起更新概率模型。通过对概率模型进行采样,可以用有希望的解决方案在搜索区域之间生成新的个体。而且,当机器上存在空闲时间时,采用左移方案来改善调度方案。另外,一些模糊数运算用于计算调度目标值。基于实验设计的田口方法研究了参数设置的影响,并提出了合适的参数设置方法。提供了数值测试结果并与一些现有算法进行了比较,证明了所提出的EDA的有效性。

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