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Resizing Technique-Based Hybrid Genetic Algorithm for Optimal Drift Design of Multistory Steel Frame Buildings

机译:大小化基于技术的混合遗传算法,实现多晶钢框架建筑的最优漂移设计

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摘要

Since genetic algorithm-based optimization methods are computationally expensive for practical use in the field of structural optimization, a resizing technique-based hybrid genetic algorithm for the drift design of multistory steel frame buildings is proposed to increase the convergence speed of genetic algorithms. To reduce the number of structural analyses required for the convergence, a genetic algorithm is combined with a resizing technique that is an efficient optimal technique to control the drift of buildings without the repetitive structural analysis. The resizing technique-based hybrid genetic algorithm proposed in this paper is applied to the minimum weight design of three steel frame buildings. To evaluate the performance of the algorithm, optimum weights, computational times, and generation numbers from the proposed algorithm are compared with those from a genetic algorithm. Based on the comparisons, it is concluded that the hybrid genetic algorithm shows clear improvements in convergence properties.
机译:由于基于遗传算法的优化方法对于结构优化领域的实际应用,因此提出了一种大小化技术的混合遗传算法,用于多晶钢框架建筑物的漂移设计,以提高遗传算法的收敛速度。为了减少收敛所需的结构分析的数量,遗传算法与调整大小技术组合,这是一种有效的最佳技术,以控制建筑物的漂移而无需重复的结构分析。本文提出的大小化技术的混合遗传算法应用于三个钢框架建筑的最小重量设计。为了评估算法的性能,与来自遗传算法的算法中的算法的最佳权重,计算时间和生成编号进行比较。基于比较,结论是杂化遗传算法显示出收敛性的清晰改善。

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