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Adaptive dimensional search: A new metaheuristic algorithm for discrete truss sizing optimization

机译:自适应尺寸搜索:一种新的启发式算法,用于离散桁架尺寸优化

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In the present study a new metaheuristic algorithm called adaptive dimensional search (ADS) is proposed for discrete truss sizing optimization problems. The robustness of the ADS lies in the idea of updating search dimensionality ratio (SDR) parameter online during the search for a rapid and reliable convergence towards the optimum. In addition, several alternative stagnation-control strategies are integrated with the algorithm to escape from local optima, in which a limited uphill (non-improving) move is permitted when a stagnation state is detected in the course of optimization. Besides a remarkable computational efficiency, the ease of implementation and capability of locating promising solutions for challenging instances of practical design optimization are amongst the remarkable features of the proposed algorithm. The efficiency of the ADS is investigated and verified using two benchmark examples as well as three real-world problems of discrete sizing truss optimization. A comparison of the numerical results obtained using the ADS with those of other metaheuristic techniques indicates that the proposed algorithm is capable of locating improved solutions using much lesser computational effort. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本研究中,针对离散桁架尺寸优化问题,提出了一种新的元启发式算法,称为自适应尺寸搜索(ADS)。 ADS的鲁棒性在于在搜索过程中在线更新搜索维数比(SDR)参数的想法,以朝着最优方向快速,可靠地收敛。此外,该算法还集成了几种替代的停滞控制策略,以逃脱局部最优控制,其中在优化过程中检测到停滞状态时,允许有限的上坡(非改善)运动。除了出色的计算效率外,所提出算法的显着特征还包括易于实现,能够为实际设计优化的挑战性实例找到有希望的解决方案。使用两个基准示例以及离散尺寸桁架优化的三个实际问题研究和验证了ADS的效率。使用ADS与其他元启发式技术获得的数值结果的比较表明,所提出的算法能够以更少的计算量找到改进的解决方案。 (C)2015 Elsevier Ltd.保留所有权利。

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