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Performance evaluation of an improved harmony search algorithm for numerical optimization: Melody Search (MS)

机译:用于数值优化的改进和声搜索算法的性能评估:旋律搜索(MS)

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Melody Search (MS) Algorithm as an innovative improved version of Harmony Search optimization method, with a novel Alternative Improvisation Procedure (AIP) is presented in this paper. MS algorithm mimics performance processes of the group improvisation for finding the best succession of pitches within a melody. Utilizing different player memories and their interactive process, enhances the algorithm efficiency compared to the basic HS, while the possible range of variables can be varied going through the algorithm iterations. Moreover, applying the new improvisation scheme (AIP) makes algorithm more capable in optimizing shifted and rotated unimodal and multimodal problems than the basic MS. In order to demonstrate the performance of the proposed algorithm, it is successfully applied to various benchmark optimization problems. Numerical results reveal that the proposed algorithm is capable of finding better solutions when compared with well-known HS, IHS, CHS, SGHS, NGHS and basic MS algorithms. The strength of the new meta-heuristic algorithm is that the superiority of the algorithm over other compared methods increases when the dimensionality of the problem or the entire feasible range of the solution space increases.
机译:本文提出了旋律搜索(MS)算法,它是和声搜索优化方法的创新改进版本,并具有新颖的替代即兴程序(AIP)。 MS算法模仿了即席演奏的演奏过程,以找到旋律中音调的最佳连续性。与基本HS相比,利用不同的玩家记忆及其交互过程,可以提高算法效率,而变量的可能范围可以通过算法迭代进行更改。此外,与基本的MS相比,应用新的即兴创作方案(AIP)使算法更能优化移位和旋转的单峰和多峰问题。为了证明所提出算法的性能,将其成功地应用于各种基准优化问题。数值结果表明,与著名的HS,IHS,CHS,SGHS,NGHS和基本MS算法相比,该算法能够找到更好的解决方案。新的元启发式算法的优势在于,当问题的维数或解空间的整个可行范围增加时,该算法相对于其他比较方法的优越性也会增加。

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