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A Cultural Algorithm with Differential Evolution to Solve Constrained Optimization Problems

机译:求解约束优化问题的具有差分进化的文化算法

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摘要

A cultural algorithm is proposed in this paper. The main novel feature of this approach is the use of differential evolution as a population space. Differential evolution has been found to be very effective when dealing with real valued optimization problems. The knowledge sources contained in the belief space of the cultural algorithm are specifically designed according to the differential evolution population. Furthermore, we introduce an influence function that selects the source of knowledge to apply the evolutionary operators. Such influence function considerably improves the performance when compared to a previous version of the algorithm (developed by the same authors). We use a well-known set of test functions to validate the approach, and compare the results with respect to the best constraint-handling technique known to date in evolutionary optimization.
机译:本文提出了一种文化算法。这种方法的主要新颖特征是将差异进化用作种群空间。发现差分进化在处理实值优化问题时非常有效。针对文化算法的信念空间中包含的知识源,根据差异进化种群进行了专门设计。此外,我们介绍了一种影响函数,该函数选择知识源以应用进化算子。与该算法的先前版本(由同一作者开发)相比,这种影响功能大大提高了性能。我们使用一组著名的测试函数来验证该方法,并将结果与​​进化优化中迄今为止已知的最佳约束处理技术进行比较。

著录项

  • 来源
    《》|2004年|P.881-890|共10页
  • 会议地点 Puebla(IT)
  • 作者单位

    CINVESTAV-IPN (Evolutionary Computation Group), Dpto. de Ing. Elect./Secc. Computacion, Av. IPN No. 2508, Col. San Pedro Zacatenco, Mexico, D.F. 07300, Mexico;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人工智能理论;
  • 关键词

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