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Weight coefficient cluster covering genetic algorithm for multi-objective optimization based on accurate and fuzzy decoding

机译:基于精确和模糊解码的加权系数覆盖遗传算法的多目标优化

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A novel weight coefficient cluster covering genetic algorithm for multi-objective optimization and its implementation based on Delphi 7.0 are discussed. First, the principle and key technologies of the algorithm are presented, including cluster covering, accurate decoding and fuzzy decoding, etc. Then, its workflow is analyzed. Its main modules include input module, computing module, output module, and operational module. Its operational process is illustrated. The influence of algorithm parameters on computing results is also analyzed. The results show that the algorithm is validated. The algorithm can adopt several computing patterns. Both accurate decoding and fuzzy decoding have good astringency and diversity distribution. It is easy to use and its visualized result analyzing sub-system can output both data and graphs. The alternative employment of accurate decoding and fuzzy decoding can further improve its performance. These instructions give you basic guidelines for preparing papers for conference proceedings.
机译:讨论了一种覆盖遗传算法的多目标优化权系数簇及其在Delphi 7.0中的实现。首先介绍了该算法的原理和关键技术,包括聚类覆盖,精确解码和模糊解码等。然后,对其工作流程进行了分析。它的主要模块包括输入模块,计算模块,输出模块和操作模块。说明了其操作过程。还分析了算法参数对计算结果的影响。结果表明该算法是有效的。该算法可以采用几种计算模式。精确解码和模糊解码都具有良好的收敛性和分集分布。它易于使用,其可视化结果分析子系统可以输出数据和图形。交替使用精确解码和模糊解码可以进一步提高其性能。这些说明为您准备会议论文集提供了基本指导。

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