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A Hybrid Harmony Search Algorithm Combined with Differential Evolution for Global Optimization Problems

机译:求解全局最优化问题的混合差分融合与混合搜索算法

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Harmony search (HS) is a recently proposed meta-heuristic by imitating music improvisation process, which has drawn much attention in the past few years. However, researches have revealed that the performance and the convergence rate of the method are suffered when dealing with high-dimensional or/and multimodal problems. To get a better control between exploitation and exploration, a hybrid HS algorithm is proposed, which is characterized in two aspects. First, the memory consideration scheme is modified by introducing crossover and mutation operators, which is inspired by the differential evolution (DE) algorithm. Second, two control parameters, namely PAR and bw, are either dynamically adjusted or self-learning along with the evolution process to fine-tune the solutions. Numerical results based on a test suite of well-known benchmark functions show that the proposed algorithm is more effective or at least competitive in finding near-optimal solutions compared with three HS variants and the DE/rand/1/bin algorithm.
机译:和谐搜索(HS)是最近通过模仿音乐即兴创作过程而提出的元启发式方法,在过去几年中引起了广泛关注。然而,研究表明,在处理高维或/和多峰问题时,该方法的性能和收敛速度受到影响。为了更好地控制开发与勘探之间的关系,提出了一种混合HS算法,该算法具有两个方面的特点。首先,通过考虑交叉进化和变异算子来修改内存考虑方案,该算子是由差分进化(DE)算法启发而来的。其次,两个控制参数,即PAR和bw,会随着演化过程进行动态调整或自学习,以对解决方案进行微调。基于一组著名基准功能测试套件的数值结果表明,与三个HS变体和DE / rand / 1 / bin算法相比,该算法在寻找近似最优解方面更为有效或至少具有竞争力。

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