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Multiobjective Optimization Method Based on Adaptive Parameter Harmony Search Algorithm

机译:基于自适应参数协调搜索算法的多目标优化方法

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The present trend in industries is to improve the techniques currently used in design and manufacture of products in order to meet the challenges of the competitive market. The crucial task nowadays is to find the optimal design and machining parameters so as to minimize the production costs. Design optimization involves more numbers of design variables with multiple and conflicting objectives, subjected to complex nonlinear constraints. The complexity of optimal design of machine elements creates the requirement for increasingly effective algorithms. Solving a nonlinear multiobjective optimization problem requires significant computing effort. From the literature it is evident that metaheuristic algorithms are performing better in dealing with multiobjective optimization. In this paper, we extend the recently developed parameter adaptive harmony search algorithm to solve multiobjective design optimization problems using the weighted sum approach. To determine the best weightage set for this analysis, a performance index based on least average error is used to determine the index of each weightage set. The proposed approach is applied to solve a biobjective design optimization of disc brake problem and a newly formulated biobjective design optimization of helical spring problem. The results reveal that the proposed approach is performing better than other algorithms.
机译:工业上的当前趋势是改进当前在产品设计和制造中使用的技术,以应对竞争市场的挑战。如今的关键任务是找到最佳的设计和加工参数,以最大程度地降低生产成本。设计优化涉及多个具有多个且相互冲突的目标的设计变量,这些变量受复杂的非线性约束。机器元件优化设计的复杂性提出了对日益有效的算法的要求。解决非线性多目标优化问题需要大量的计算工作。从文献中可以明显看出,元启发式算法在处理多目标优化方面表现更好。在本文中,我们扩展了最近开发的参数自适应和声搜索算法,以使用加权和方法解决多目标设计优化问题。为了确定此分析的最佳权重集,使用基于最小平均误差的性能指标来确定每个权重集的指标。该方法用于解决盘式制动器问题的双目标设计优化和新制定的螺旋弹簧问题的双目标设计优化。结果表明,所提出的方法比其他算法具有更好的性能。

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