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Structural design using multi-objective metaheuristics. Comparative study and application to a real-world problem

机译:使用多目标元启发法进行结构设计。比较研究并将其应用于实际问题

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Many structural design problems in the field of civil engineering are naturally multi-criteria, i.e., they have several conflicting objectives that have to be optimized simultaneously. An example is when we aim to reduce the weight of a structure while enhancing its robustness. There is no a single solution to these types of problems, but rather a set of designs representing trade-offs among the conflicting objectives. This paper focuses on the application of multi-objective metaheuristics to solve two variants of a real-world structural design problem. The goal is to compare a representative set of state-of-the-art multi-objective metaheuristic algorithms aiming to provide civil engineers with hints as to what optimization techniques to use when facing similar problems as those selected in the study presented in this paper. Accordingly, our study reveals that MOCell, a cellular genetic algorithm, provides the best overall performance, while NSGA-II, the de facto standard multi-objective metaheuristic technique, also demonstrates a competitive behavior.
机译:土木工程领域中的许多结构设计问题自然是多准则的,即,它们具有必须相互优化的几个相互矛盾的目标。一个例子是,我们旨在减轻结构的重量,同时增强其坚固性。对于这些类型的问题,没有单一的解决方案,而是代表冲突目标之间权衡取舍的一组设计。本文着重于多目标元启发法在解决实际结构设计问题的两个变体中的应用。目的是比较一组代表性的最新多目标元启发式算法,旨在为土木工程师提供有关在面临与本文研究中所选择的相似问题时要使用的优化技术的提示。因此,我们的研究表明,细胞遗传算法MOCell提供了最佳的整体性能,而事实上的标准多目标元启发式技术NSGA-II也表现出竞争行为。

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