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Incorporating Preferences to a Multi-objectiveAnt Colony Algorithm for Time and Space Assembly Line Balancing

机译:将首选项结合到用于时空装配线平衡的多目标蚁群算法中

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摘要

We present an extension of a multi-objective algorithm based on Ant Colony Optimisation to solve a more realistic variant of a classical industrial problem: Time and Space Assembly Line Balancing. We study the influence of incorporating some domain knowledge by guiding the search process of the algorithm with preferences-based dominance. Our approach is compared with other techniques, and every algorithm tackles a real-world instance from a Nissan plant. We prove that the embedded expert knowledge is even more justified in a real-world problem.
机译:我们提出了一种基于蚁群优化的多目标算法的扩展,以解决经典工业问题的更现实变体:时间和空间装配线平衡。我们通过基于偏好的优势来指导算法的搜索过程,研究了合并某些领域知识的影响。我们的方法与其他技术进行了比较,每种算法都可以处理日产工厂的实际实例。我们证明,在一个实际问题中,嵌入的专家知识甚至更有道理。

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