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Hybrid decomposition heuristics for solving large-scale scheduling problems in semiconductor wafer fabrication

机译:混合分解启发法用于解决半导体晶圆制造中的大规模调度问题

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Most shop-floor scheduling policies used in practice rely on dispatching, making use of only local information at individual workcenters. However, in semiconductor manufacturing environments, we have access to real-time shop-floor status information for the entire facility. In these complex facilities, there would appear to be significant potential for improved schedules by considering global shop information and using optimization-based heuristics. To this end, we propose a rolling horizon (RH) heuristic that decomposes the shop into smaller subproblems that can be solved sequentially over time using a workcenter-based decomposition heuristic. We develop test instances for evaluating our heuristic using a simulation model of an industrial facility. The results demonstrate that the proposed heuristic yields better schedules than the dispatching rules in the vast majority of test instances with reasonable computational effort.
机译:实际上,大多数车间调度策略都依赖于调度,仅利用各个工作中心的本地信息。但是,在半导体制造环境中,我们可以访问整个工厂的实时车间状态信息。在这些复杂的设施中,通过考虑全球商店信息并使用基于优化的启发式方法,似乎有很大的改进时间表的潜力。为此,我们提出了一种滚动式(RH)启发式方法,该方法将车间分解为较小的子问题,这些子问题可以使用基于工作中心的分解启发式方法随时间顺序解决。我们使用工业设施的仿真模型开发测试实例,以评估我们的启发式方法。结果表明,在绝大多数测试实例中,通过合理的计算努力,所提出的启发式方法比调度规则产生了更好的调度。

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