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A Novel Hybrid Algorithm for Solving Multiobjective Optimization Problems with Engineering Applications

机译:一种新型混合算法,用于解决工程应用的多目标优化问题

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An effective hybrid algorithm is proposed for solving multiobjective optimization engineering problems with inequality constraints. The weighted sum technique and BFGS quasi-Newton’s method are combined to determine a descent search direction for solving multiobjective optimization problems. To improve the computational efficiency and maintain rapid convergence, a cautious BFGS iterative format is utilized to approximate the Hessian matrices of the objective functions instead of evaluating them exactly. The effectiveness of the proposed algorithm is demonstrated through a comparison study, which is based on numerical examples. Meanwhile, we propose an effective multiobjective optimization strategy based on the algorithm in conjunction with the surrogate model method. This proposed strategy has been applied to the crashworthiness design of the primary energy absorption device’s crash box structure and front rail under low-speed frontal collision. The optimal results demonstrate that the proposed methodology is promising in solving multiobjective optimization problems in engineering practice.
机译:提出了一种用于解决不等式约束的多目标优化工程问题的有效混合算法。组合加权和技术和BFGS准牛顿’ S方法以确定用于解决多目标优化问题的血位搜索方向。为了提高计算效率并维持快速收敛,利用谨慎的BFGS迭代格式来近似客观函数的Hessian矩阵,而不是精确地评估它们。通过比较研究证明了所提出的算法的有效性,其基于数值例子。同时,我们提出了一种基于替代模型方法的算法的有效多目标优化策略。该拟议的策略已应用于初级能量吸收装置的崩溃设计’在低速正碰撞下的碰撞箱结构和前轨的崩溃盒结构和前轨。最佳结果表明,所提出的方法在求解工程实践中的多目标优化问题方面很有希望。

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