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Adaptive Sine-Cosine Algorithms for Global Optimization

机译:全局优化的自适应正弦余弦算法

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This paper introduces improved versions of a Sine-Cosine algorithm called Adaptive Sine-Cosine algorithms. It is made adaptive through incorporation of a linear and an exponential term with respect to an individual agent's fitness. Based on the newly introduced formulas, an individual agent moves with a dynamic and different step sizes compared to other agents through the whole searching process. It also introduces a balance exploration and exploitation strategies. The proposed algorithms in comparison to the original algorithm are then tested with several test functions that have different properties and landscapes. The algorithms performance in terms of their achievement of finding a near optimal solution is analyzed and discussed. Numerical result of the test shows that the proposed algorithms have achieved a better accuracy. The finding also shows that the proposed algorithms have attained a faster convergence toward the near optimal solution.
机译:本文介绍了称为自适应Sine-Cosine算法的Sine-Cosine算法的改进版本。通过结合线性和指数项来适应个体行为者的适应性。根据新引入的公式,在整个搜索过程中,与其他代理相比,单个代理以动态且步长不同的方式移动。它还介绍了一种平衡的勘探和开发策略。然后,使用具有不同属性和格局的多个测试函数对与原始算法进行比较的算法进行了测试。对算法的性能进行了分析,并讨论了找到最佳解决方案的性能。实验数值结果表明,该算法取得了较好的精度。该发现还表明,所提出的算法已朝着接近最优解的方向更快地收敛。

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