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Neighborhood Synthesis from an Ensemble of MIP and CP Models

机译:来自MIP和CP型号的集合的邻域合成

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In this paper we describe a procedure that automatically synthesizes a neighborhood from an ensemble of Mixed Integer Programming (MIP) and/or Constraint Programming (CP) models. We move on from a recent paper by Adamo et al. (2015) in which a neighborhood structure is automatically designed from a (single) MIP model through a three-step approach: (1) a semantic feature extraction from the MIP model; (2) the derivation of neighborhood design mechanisms based on these features; (3) an automatic configuration phase to find the "proper mix" of such mechanisms taking into account the instance distribution. Here, we extend the previous work in order to generate a suitable neighborhood from an ensemble of MIP and/or CP models of a given combinatorial optimization problem. Computational results show relevant improvements over the approach considering a single model.
机译:在本文中,我们描述了一种从混合整数编程(MIP)和/或约束编程(CP)模型的集合中综合邻域的过程。我们通过Adamo等人从最近的一篇论文继续前进。 (2015)其中一个邻域结构通过三步方法自动设计由(单)MIP模型的设计:(1)来自MIP模型的语义特征提取; (2)基于这些特征的邻域设计机制的推导; (3)自动配置阶段,以查找此类机制的“适当混合”考虑到实例分布。在这里,我们扩展了以前的工作,以从给定的组合优化问题的MIP和/或CP模型的集合生成合适的邻域。计算结果显示了考虑单一模型的方法相关的相关性。

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