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A HYBRID METHOD COMBINING GENETIC ALGORITHM AND HOOKE-JEEVES METHOD FOR CONSTRAINED GLOBAL OPTIMIZATION

机译:遗传算法与胡克-吉夫斯方法相结合的混合方法用于约束全局优化

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摘要

A new global optimization method combining genetic algorithm and Hooke-Jeeves method to solve a class of constrained optimization problems is studied in this paper. We first introduce the quadratic penalty function method and the exact penalty function method to transform the original constrained optimization problem with general equality and inequality constraints into a sequence of optimization problems only with box constraints. Then, the combination of genetic algorithm and Hooke-Jeeves method is applied to solve the transformed optimization problems. Since Hooke-Jeeves method is good at local search, our proposed method dramatically improves the accuracy and convergence rate of genetic algorithm. In view of the derivative-free of Hooke-Jeeves method, our method only requires information of objective function value which not only can overcome the computational difficulties caused by the ill-condition of the square penalty function, but also can handle the non-differentiability by the exact penalty function. Some well-known test problems are investigated. The numerical results show that our proposed method is efficient and robust.
机译:研究了一种新的结合遗传算法和Hooke-Jeeves方法的全局优化方法,以解决一类约束优化问题。首先,我们引入二次惩罚函数方法和精确惩罚函数方法,将具有一般等式和不等式约束的原始约束优化问题转换为仅具有箱形约束的一系列优化问题。然后,结合遗传算法和Hooke-Jeeves方法来解决变换后的优化问题。由于Hooke-Jeeves方法擅长局部搜索,因此我们提出的方法大大提高了遗传算法的准确性和收敛速度。鉴于Hooke-Jeeves方法的无导数,我们的方法只需要目标函数值的信息,不仅可以克服平方罚函数的病态所带来的计算困难,而且可以处理不可微分。通过精确的惩罚函数。研究了一些众所周知的测试问题。数值结果表明,该方法是有效且鲁棒的。

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