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A Mixed-Coding Scheme of Evolutionary Algorithms to Solve Mixed-Integer Nonlinear Programming Problems

机译:求解混合整数非线性规划问题的进化算法混合编码方案

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In this paper, mixed-integer hybrid differential evolution (MIHDE) is developed to deal with the mixed-integer optimization problems, This hybrid algorithm contains the migration operation to avoid candidate individuals clustering together. We introduce the population diversity measure to inspect when the migration operation should be performed so that the user can use a smaller population size to obtain a global solution. A mixed coding representation and a rounding operation are introduced in MIHDE so that the hybrid algorithm is not only used to solve the mixed-integer nonlinear optimization problems, but also used to solve the real and integer nonlinear optimization problems. Some numerical examples are tested to illustrate the performance of the proposed algorithm. Numerical examples show that the proposed algorithm converges to better solutions than the conventional genetic algorithms.
机译:本文针对混合整数优化问题,开发了混合整数混合差分进化算法(MIHDE)。该混合算法包含迁移操作,以避免候选个体聚类在一起。我们引入了人口多样性措施来检查何时应该执行迁移操作,以便用户可以使用较小的人口规模来获得全局解决方案。在MIHDE中引入了混合编码表示和舍入运算,因此混合算法不仅用于解决混合整数非线性优化问题,而且还用于解决实数和整数非线性优化问题。测试了一些数值示例,以说明所提出算法的性能。数值算例表明,与常规遗传算法相比,该算法收敛于更好的解。

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