基于多样性的JADE算法

Zhaoguang Liu
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引用次数: 0

摘要

在自适应DE中,使用参数p来平衡算法的探索和开发能力。在进化过程中选择合适的p是自适应遗传算法面临的一个持续挑战,种群多样性是显示个体在搜索空间中分布的有效指标。本文提出了利用多样性作为搜索策略选择准则来计算自适应DE中的p。该算法将计算得到的分集归一化为[0,1],并根据归一化分集使用指数函数计算p。多样性越高,p值越高,提案的勘探能力越强,反之亦然。使用2017年IEEE进化计算大会的基准函数,将所提出算法的准确性与其他五种高级DE变体的准确性进行了实验比较。结果表明,对于大多数基准函数,该算法在所有变量中都取得了最好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diversity-based JADE Algorithm
In adaptive DE, the parameter p is used to balance the algorithm exploration and exploitation ability. Selection of suitable p in the evolution process is an ongoing challenge for adaptive DE. Population diversity is an effective measure showing the distribution of individuals in the search space. In this paper, use of diversity as a search strategy selection criterion for calculating p in adaptive DE is proposed. The proposed algorithm normalizes the calculated diversity to [0, 1] and calculates p according to the normalized diversity using an exponential function. Higher diversity yields higher p, providing the proposal with higher exploration ability, and vice versa. The accuracy of the proposed algorithm was experimentally compared to those of five other advanced DE variants using benchmark functions from IEEE Congress on Evolutionary Computation 2017. The results show that the proposed algorithm achieved the best performance among all variants for most benchmark functions.
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