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Tractable Supply Chain Production Planning, Modeling Nonlinear Lead Time And Quality Of Service Constraints

机译:可执行的供应链生产计划,建模非线性提前期和服务质量约束

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This paper addresses the task of coordinated planning of a supply chain (SC). Work in process (WIP) in each facility participating in the SC, finished goods inventory, and backlogged demand costs are minimized over the planning horizon. In addition to the usual modeling of linear material flow balance equations, variable lead time (LT) requirements, resulting from the increasing incremental WIP as a facility's utilization increases, are also modeled. In recognition of the emerging significance of quality of service (QoS), that is, control of stockout probability to meet demand on time, maximum stockout probability constraints are also modeled explicitly. Lead time and QoS modeling require incorporation of nonlinear constraints in the production planning optimization process. The quantification of these nonlinear constraints must capture statistics of the stochastic behavior of production facilities revealed during a time scale far shorter than the customary weekly time scale of the planning process. The apparent computational complexity of planning production against variable LT and QoS constraints has long resulted in MRP-based scheduling practices that ignore the LT and QoS impact to the plan's detriment. The computational complexity challenge was overcome by proposing and adopting a time-scale decomposition approach to production planning, where short-time-scale stochastic dynamics are modeled in multiple facility-specific subproblems that receive tentative targets from a deterministic master problem and return statistics to it. A converging and scalable iterative methodology is implemented, providing evidence that significantly lower cost production plans are achievable in a computationally tractable manner.
机译:本文解决了供应链(SC)协调计划的任务。在计划范围内,参与SC的每个工厂中的在制品(WIP),制成品库存和积压的需求成本都被最小化。除了通常的线性物料流平衡方程建模外,还对随设备利用率增加而增加的WIP导致的可变提前期(LT)需求进行了建模。认识到服务质量(QoS)的重要性,即控制缺货概率以满足时间要求,还对最大缺货概率约束进行了显式建模。提前期和QoS建模要求在生产计划优化过程中纳入非线性约束。这些非线性约束的量化必须捕获在远远小于计划过程的常规每周时间尺度的时间尺度内揭示的生产设施随机行为的统计数据。长期以来,针对可变的LT和QoS约束进行计划生产的明显计算复杂性导致了基于MRP的调度实践,而忽略了LT和QoS对计划不利的影响。通过在生产计划中提出并采用时间尺度分解方法来克服计算复杂性的挑战,其中在多个特定于工厂的子问题中对短期尺度的随机动力学进行建模,这些子问题从确定性主问题接收暂定目标并将统计信息返回给它。实现了一种收敛且可扩展的迭代方法,提供了证据,表明可以以计算上易于处理的方式实现成本大大降低的生产计划。

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