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首页> 外文期刊>International journal of metaheuristics >DOE-based parameter tuning for local branching algorithm
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DOE-based parameter tuning for local branching algorithm

机译:基于DOE的局部分支算法参数调整

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Design of experiments (DOE) refers to a process of planning the experiments so that appropriate data that can be analysed by statistical methods will be collected, resulting in valid and objective conclusions. This paper presents a DOE-based approach for parameter tuning of local branching algorithm. Local branching is a metaheuristic technique utilising a general MIP solver to explore neighbourhoods. This solution strategy is exact in nature, although it is designed to improve heuristic behaviour of MIP solver at hand. The proposed approach has been applied to find shortest Hamiltonian path in travelling salesman problem (TSP). A Hamiltonian path is a path in an undirected graph, which visits each node exactly once, and returns to the starting node. To evaluate the algorithm, the standard problems with different sizes are used. The performance of the algorithm is analysed by the quality of solution and CPU time.
机译:实验设计(DOE)是指计划实验的过程,以便收集可以通过统计方法分析的适当数据,从而得出有效和客观的结论。本文提出了一种基于DOE的局部分支算法参数调整方法。局部分支是一种利用一般MIP求解器探索社区的元启发式技术。该解决方案策略本质上是精确的,尽管它旨在改善手边的MIP求解器的启发式行为。所提出的方法已被应用于寻找旅行商问题(TSP)中的最短哈密顿路径。哈密​​顿路径是无向图中的路径,该路径仅访问每个节点一次,然后返回到起始节点。为了评估算法,使用了具有不同大小的标准问题。通过解决方案的质量和CPU时间来分析算法的性能。

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