arXiv:2512.11864cs.AImath.OC2025-12

解决工业场景中带依赖与日历资源约束的并行机调度难题

Solving Parallel Machine Scheduling With Precedences and Cumulative Resource Constraints With Calendars

  • 基于约束建模与局部搜索设计精确解法和高效启发式算法
  • 可处理真实工厂中的任务依赖与日历资源限制,支持大规模实例求解
  • 已在工业环境中部署应用,适合制造调度优化研究者参考

在现代制造业中,为并行机器寻找高效的生产调度方案是一项关键挑战。尽管自动化调度技术具有显著降低成本的潜力,但实际生产环境常面临复杂的任务依赖关系和基于日历的累积资源约束,现有方法难以有效应对。本文提出一种新型并行机调度问题,包含作业优先级约束和日历驱动的累积资源限制,源于真实工业场景。针对小规模实例,采用约束建模结合先进求解器的精确解法;针对大规模实例,设计构造启发式与定制化局部搜索元启发式算法。该元启发式方法已成功部署于工业现场,具备实际应用价值。

原文摘要 · Abstract (English)

The task of finding efficient production schedules for parallel machines is a challenge that arises in most industrial manufacturing domains. There is a large potential to minimize production costs through automated scheduling techniques, due to the large-scale requirements of modern factories. In the past, solution approaches have been studied for many machine scheduling variations, where even basic variants have been shown to be NP-hard. However, in today's real-life production environments, additional complex precedence constraints and resource restrictions with calendars arise that must be fulfilled. These additional constraints cannot be tackled efficiently by existing solution techniques. Thus, there is a strong need to develop and analyze automated methods that can solve such real-life parallel machine scheduling scenarios. In this work, we introduce a novel variant of parallel machine scheduling with job precedences and calendar-based cumulative resource constraints that arises in real-life industrial use cases. A constraint modeling approach is proposed as an exact solution method for small scheduling scenarios together with state-of-the-art constraint-solving technology. Further, we propose a construction heuristic as well as a tailored metaheuristic using local search to efficiently tackle large-scale problem instances. This metaheuristic approach has been deployed and is currently being used in an industrial setting.

调度优化约束求解工业应用

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