基于Epsilon约束生物地理学优化的约束优化

Xiaojun Bi, Jue Wang
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引用次数: 8

摘要

针对约束优化问题,提出了一种新的基于epsilon约束生物地理学的优化方法。该算法采用epsilon约束方法对约束条件进行处理。同时,根据epsilon约束方法的特点,提出了一种新的基于epsilon约束的排序规则,得到了迁移速率和迁移速率。此外,提出了一种新的动态迁移策略,提高了迁移机制的搜索能力。最后,为了提高收敛精度,引入了分段逻辑混沌映射来改进变异机制。在13个知名的基准测试函数上进行的数值实验表明,该算法与其他优化算法具有较强的竞争力。此外,该算法还能有效避免未找到最优结果前的收敛问题,平衡了挖掘与探索的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constrained Optimization Based on Epsilon Constrained Biogeography-Based Optimization
A new epsilon constrained biogeography-based optimization is proposed to solve constrained optimization problems. In the proposed algorithm, the epsilon constrained method is utilized to handle the constraints. Simultaneously, based on the feature of epsilon constrained method, a new ordering rule based on epsilon constrained is used to obtain the immigration rate and emigration rate. Additionally, a new dynamic migration strategy is shown to enhance the search ability of migration mechanism. Eventually, with the purpose of improving the precision of convergence, the piecewise logistic chaotic map is introduced to improve the variation mechanism. Numerical experiments on 13 well-known benchmark test function have shown that the proposed algorithm is competitive with other optimization algorithms. Furthermore, the proposed algorithm can avoid effectively the convergence before the optimal results have been found, and balance the exploitation and the exploration.
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