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Crossover Operator Using Knowledge Transfer for the Firefighter Problem

机译:交叉操作员使用知识转移解决消防员问题

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This paper concerns the Firefighter Problem (FFP) which is a graph-based problem in which solutions can be represented as permutations. A new crossover operator is proposed that uses a machine learning model to decide how to combine two parent solutions of the FFP into an offspring. The operator works on two parent permutations and the machine learning model provides information which parent to select the next permutation element from, when constructing a new solution. Training data is collected during a training run in which transpositions are applied to solutions found by an evolutionary algorithm for a small problem instance. The machine learning model is trained to classify pairs of graph vertices into two classes corresponding to which vertex should be placed earlier in the permutation. In the experiments the machine learning model was trained on a set of FFP instances with 1000 vertices. Subsequently, the proposed operator was used for solving FFP instances with up to 10000 vertices. The experiments, in which the proposed operator was compared against a set of other crossover operators, shown that the proposed operator is able to effectively use knowledge gathered when solving smaller instances for solving larger instances of the same problem.
机译:本文涉及消防员问题(FFP),它是一种基于图的问题,其中的解决方案可以表示为置换。提出了一种新的交叉算子,该算子使用机器学习模型来决定如何将FFP的两个父解决方案组合为后代。运算符处理两个父置换,并且机器学习模型在构造新解决方案时会提供信息,从哪个父中选择下一个置换元素。在训练运行期间收集训练数据,其中将换位应用于由进化算法针对小问题实例找到的解决方案。训练机器学习模型以将成对的图顶点分类为两类,对应于应在置换中更早放置哪个顶点。在实验中,机器学习模型是在一组具有1000个顶点的FFP实例上进行训练的。随后,将拟议的算子用于求解最多10000个顶点的FFP实例。将提议的算子与一组其他交叉算子进行比较的实验表明,提出的算子能够有效地使用在求解较小实例时收集的知识来解决同一问题的较大实例。

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