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An Effective Subgradient Method for Scheduling a Steelmaking-Continuous Casting Process

机译:用于计划炼钢-连铸过程的有效次梯度方法

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The steelmaking-continuous-casting (SCC) process, which includes steelmaking, refining and continuous casting, is one of the major bottlenecks of iron and steel production. Efficient and effective scheduling of this process is essential to improve the productivity and reduce the production costs of the entire production system. We present a time-index formulation for this scheduling problem and a Lagrangian relaxation (LR) approach based on the relaxation of the machine capacity constraints. The relaxed problem is solved using an efficient polynomial dynamic programming algorithm. The corresponding Lagrangian dual (LD) problem is solved using a deflected conditional subgradient level method. Unlike the conventional subgradient algorithms for the LD problem, our method guarantees convergence using the Brannlund's level control strategy to replace the strict convergence condition that the optimum of the dual problem is known a priori. Furthermore, our method enhances the efficiency by introducing a deflected conditional subgradient to weaken the zigzagging phenomena that slows the convergence of conventional subgradient algorithms. The computational results demonstrate that the approaches can quickly obtain high-quality solutions and are notably promising for the SCC scheduling.
机译:炼钢-连铸(SCC)工艺包括炼钢,精炼和连铸,是钢铁生产的主要瓶颈之一。有效而有效地调度此过程对于提高生产率并降低整个生产系统的生产成本至关重要。我们针对该调度问题提出了时间索引公式,并基于对机器容量约束的放宽提出了拉格朗日松弛(LR)方法。使用高效的多项式动态规划算法可以解决松弛问题。相应的拉格朗日对偶(LD)问题使用偏转的条件次梯度级方法解决。与LD问题的常规次梯度算法不同,我们的方法使用Brannlund的电平控制策略来保证收敛,以取代先验已知对偶问题的最优条件的严格收敛条件。此外,我们的方法通过引入偏转的条件次梯度来减弱曲折现象,从而降低了常规次梯度算法的收敛速度,从而提高了效率。计算结果表明,该方法可以快速获得高质量的解决方案,对于SCC调度具有显着的前景。

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