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A constraint programming based column generation approach to nurse rostering problems

机译:基于约束编程的列生成方法,用于护士排班问题

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This paper presents our investigations on a hybrid constraint programming based column generation (CP-CG) approach to nurse rostering problems. We present a complete model to formulate all the complex real-world constraints in several benchmark nurse rostering problems. The hybrid CP-CG approach is featured with not only the effective relaxation and optimality reasoning of linear programming but also the powerful expressiveness of constraint programming in modeling the complex logical constraints in nurse rostering problems. In solving the CP pricing subproblem, we propose two strategies to generate promising columns which contribute to the efficiency of the CG procedure. A Depth Bounded Discrepancy Search is employed to obtain diverse columns. A cost threshold is adaptively tightened based on the information collected during the search to generate columns of good quality. Computational experiments on a set of benchmark nurse rostering problems demonstrate a faster convergence by the two strategies and justify the effectiveness and efficiency of the hybrid CP-CG approach.
机译:本文介绍了我们对基于混合约束编程的列生成(CP-CG)方法的调查,以解决护士排班问题。我们提供了一个完整的模型来制定几个基准护士名册问题中的所有复杂的实际约束。混合CP-CG方法不仅具有线性规划的有效松弛和最优性推理功能,而且还具有约束规划在建模护士排班问题中的复杂逻辑约束方面的强大表达能力。在解决CP定价子问题时,我们提出了两种策略来生成有前景的列,这些列有助于CG程序的效率。深度界限差异搜索用于获得不同的列。根据搜索过程中收集的信息,自适应地收紧成本阈值,以生成高质量的列。对一组基准护士名册问题的计算实验表明,这两种策略可以更快地收敛,并且证明了混合CP-CG方法的有效性和效率。

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