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Optimization Design of Trusses Based on Covariance Matrix Adaptation Evolution Strategy Algorithm

机译:基于协方差矩阵适应演化策略算法的桁架优化设计

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Covariance matrix adaptation evolution strategy algorithm (CMA-ES) is a newly evolution algorithm. It has become a powerful tool for solving highly nonlinear multi-peak optimization problems. In many real-world optimization problems, the location of multiple optima is often required in a search space. In order to evaluate the solution, thousands of fitness function evaluations are involved that is a time consuming or expensive processes. Therefore, conventional stochastic optimization methods meet a special challenge for a very large number of problem function evaluations. Aiming to overcome the shortcoming of stochastic optimization methods in the high calculation cost, a truss optimal method based on CMA-ES algorithm is proposed and applied to solve the section and shape optimization problems of trusses. The study results show that the method is feasible and has the advantages of high accuracy, high efficiency and easy implementation.
机译:协方差矩阵自适应演化策略算法(CMA-ES)是一种新的演进算法。它已成为解决高度非线性多峰优化问题的强大工具。在许多实际优化问题中,搜索空间通常需要多个Optima的位置。为了评估解决方案,涉及成千上万的健身函数评估,这是耗时或昂贵的过程。因此,传统的随机优化方法符合非常大量的问题函数评估的特殊挑战。旨在克服随机优化方法在高计算成本中的缺点,提出了一种基于CMA-ES算法的桁架最佳方法,并应用于解决桁架的截面和形状优化问题。研究结果表明,该方法可行,精度高,效率高,实现方便的优点。

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