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Recommending Meta-Heuristics and Configurations for the Flowshop Problem via Meta-Learning: Analysis and Design

机译:通过元学习推荐Flowshop问题的元启发式方法和配置:分析和设计

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This work proposes a meta-learning system based on Gradient Boosting Machines to recommend local search heuristics for solving flowshop problems. The investigated approach can decide if a metaheuristic (MH) is suitable for each instance. It can also provide well-suited parameters for each recommended MH using data from Irace parameter tuning. This paper considers four MHs (Hill Climbing, Tabu Search, Simulated Annealing, and Iterated Local Search) as candidates to solve several flowshop instances. In the experiments, 540 flowshop problems (with different sizes, variants, and objectives) and 50 instances for each problem are considered, resulting in a total of 27,000 instances being addressed. We use simple low-level meta-features in the meta-learning system like the number of jobs and machines, processing time distribution, flowshop variant, objective, and evaluations budget. Besides testing the recommendations in terms of accuracy and Kappa (for MH and categorical parameters), RMSE and R2 (for numerical parameters), we also explore the importance of each meta-feature in MH recommendation models. Moreover, we perform a multiple correspondence analysis on MH configurations to gain further insights into the parameters values. Results show that the proposed approach is promising, particularly for MH recommendation.
机译:这项工作提出了一种基于Gradient Boosting Machines的元学习系统,以推荐用于解决Flowshop问题的本地搜索启发式方法。研究的方法可以确定元启发式(MH)是否适合每种情况。它还可以使用Irace参数调整中的数据为每个推荐的MH提供合适的参数。本文考虑了四个MH(爬山,禁忌搜索,模拟退火和迭代局部搜索)作为解决多个Flowshop实例的候选对象。在实验中,考虑了540个flowshop问题(具有不同的大小,变体和目标),每个问题考虑了50个实例,总共解决了27,000个实例。我们在元学习系统中使用简单的低级元功能,例如作业和机器的数量,处理时间分配,flowshop变量,目标和评估预算。除了在准确性和Kappa(对于MH和分类参数),RMSE和R2(对于数值参数)方面测试建议之外,我们还探讨了MH建议模型中每个元功能的重要性。此外,我们对MH配置进行了多次对应分析,以获得对参数值的进一步了解。结果表明,所提出的方法是有希望的,特别是对于MH建议。

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