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Constrained multi-objective optimization algorithms: Review and comparison with application in reinforced concrete structures

机译:受约束的多目标优化算法:综述与钢筋混凝土结构应用的比较

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Engineering design problems are often multi-objective in nature, which means trade-offs are required between conflicting objectives. In this study, we examine the multi-objective algorithms for the optimal design of reinforced concrete structures. We begin with a review of multi-objective optimization approaches in general and then present a more focused review on multi-objective optimization of reinforced concrete structures. We note that the existing literature uses metaheuristic algorithms as the most common approaches to solve the multi-objective optimization problems. Other efficient approaches, such as derivative-free optimization and gradient-based methods, are often ignored in structural engineering discipline. This paper presents a multi-objective model for the optimal design of reinforced concrete beams where the optimal solution is interested in trade-off between cost and deflection. We then examine the efficiency of six established multi-objective optimization algorithms, including one method based on purely random point selection, on the design problem. Ranking and consistency of the result reveals a derivative-free optimization algorithm as the most efficient one. (C) 2019 Elsevier B.V. All rights reserved.
机译:工程设计问题通常是多目标的,这意味着在相互冲突目标之间需要权衡。在这项研究中,我们研究了钢筋混凝土结构的最佳设计的多目标算法。我们从一般来说开始审查多目标优化方法,然后对钢筋混凝土结构的多目标优化提供更加重点的审查。我们注意到,现有文献使用成型算法作为解决多目标优化问题的最常见方法。其他有效的方法,例如无衍生优化和基于梯度的方法,通常在结构工程学科中被忽略。本文介绍了钢筋混凝土梁最优设计的多目标型号,其中最优解决方案对成本和偏转之间的权衡感兴趣。然后,我们检查六种建立的多目标优化算法的效率,包括基于纯随机点选择的一种方法,在设计问题上。结果的排名和一致性揭示了无衍生的优化算法作为最有效的优化算法。 (c)2019年Elsevier B.V.保留所有权利。

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