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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Bottleneck identification procedures for the job shop scheduling problem with applications to genetic algorithms
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Bottleneck identification procedures for the job shop scheduling problem with applications to genetic algorithms

机译:车间调度问题的瓶颈识别程序及其在遗传算法中的应用

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摘要

Two bottleneck identification algorithms (one for bottleneck machines and the other for bottleneck jobs) are presented for the job shop scheduling problem in which the total weighted tardiness must be minimized. The scheduling policies on bottleneck machines can have significant impact on the final scheduling performance, and therefore, they need to be optimized with more computational effort. Meanwhile, bottleneck jobs that can cause considerable deterioration to the solution quality also need to be considered with higher priority. In order to describe the characteristic information concerning such bottleneck machines and bottleneck jobs, a statistical approach is devised to obtain the bottleneck characteristic values for each machine, and, in addition, a fuzzy inference system is employed to transform human knowledge into the bottleneck characteristic values for each job. These bottleneck characteristic values reflect the features of both the objective function and the current optimization stage. Finally, the effectiveness of the two procedures is verified by specifically designed genetic algorithms.
机译:针对作业车间调度问题,提出了两种瓶颈识别算法(一种用于瓶颈机器,另一种用于瓶颈作业),在该问题中必须将总加权拖延时间最小化。瓶颈机器上的调度策略可能会对最终调度性能产生重大影响,因此,需要通过更多的计算工作来优化它们。同时,还需要优先考虑可能导致解决方案质量大幅下降的瓶颈工作。为了描述有关此类瓶颈机器和瓶颈作业的特征信息,设计了一种统计方法来获取每台机器的瓶颈特征值,此外,还使用模糊推理系统将人类知识转化为瓶颈特征值每个工作。这些瓶颈特征值反映了目标函数和当前优化阶段的特征。最后,通过专门设计的遗传算法验证了这两种方法的有效性。

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