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Reduction of fitness evaluations using clustering techniques and neural network ensembles

机译:使用聚类技术和神经网络集成减少适应性评估

摘要

The invention relates to an evolutionary optimization method. First, an initial population of individuals is set up and an original fitness function is applied. Then the offspring individuals having a high evaluated quality value as parents are selected. In a third step, the parents are reproduced to create a plurality of offspring individuals. The quality of the offspring individuals is evaluated selectively using an original fitness function or an approximate fitness function. Finally, the method returns to the selection step until a termination condition is met. The step of evaluating the quality of the offspring individuals includes grouping all offspring individuals in clusters, selecting for each cluster one or a plurality of offspring individuals, resulting in altogether selected offspring individuals, evaluating the selected offspring individuals by the original fitness function, and evaluating the remaining offspring individuals by means of the approximate fitness function.
机译:本发明涉及一种进化优化方法。首先,建立个人的初始种群,并应用原始适应度函数。然后,选择具有较高评估质量值的后代作为父母。第三步,复制父母以创建多个后代个体。使用原始适应度函数或近似适应度函数有选择地评估后代个体的质量。最后,该方法返回到选择步骤,直到满足终止条件为止。评估后代个体质量的步骤包括:将所有后代个体分组,为每个聚类选择一个或多个后代个体,得到总共选定的后代个体,通过原始适应度函数评估选定的后代个体,并评估其余的后代个体通过近似适应度函数。

著录项

  • 公开/公告号US7363281B2

    专利类型

  • 公开/公告日2008-04-22

    原文格式PDF

  • 申请/专利权人 YAOCHU JIN;BERNHARD SENDHOFF;

    申请/专利号US20050042991

  • 发明设计人 BERNHARD SENDHOFF;YAOCHU JIN;

    申请日2005-01-24

  • 分类号G06F15/18;G06F5/00;

  • 国家 US

  • 入库时间 2022-08-21 20:10:28

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