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A METHOD AND SYSTEM FOR PERFORMING OPTIMIZATION ON FITNESS LANDSCAPES

机译:在健身景观上进行优化的方法和系统

摘要

The present invention introduces a new approach to optimization problems based on a previous theoretical work on extinction patterns in macroevolution. We name them Macroevolutionary Algorithms (MA). Unlike population-level evolution, which is employed in standard genetic algorithms, evolution at the level of higher taxa is used as the underlying metaphor. The model exploits the presence of links between 'species' which represent candidate solutions to the optimization problem. In order to test its effectiveness, we compared the performance of MAs versus genetic algorithms (GA) with tournament selection. The method is shown to be a good alternative to standard GAs, showing a fast monotonous search over the solution space even for very small population sizes. A mean field theoretical approach is presented, showing that the basic dynamics of MAs is close to an ecological model of multispecies competition.
机译:本发明基于对宏进化中的消光模式的先前理论工作,引入了一种用于优化问题的新方法。我们将它们命名为Macroevolutionary Algorithms(MA)。与标准遗传算法中采用的种群级进化不同,较高分类群级别的进化被用作基础隐喻。该模型利用了“物种”之间的链接,这些链接代表了优化问题的候选解决方案。为了测试其有效性,我们将MA与遗传算法(GA)的性能与比赛选择进行了比较。该方法被证明是标准GA的良好替代方案,即使对于非常小的人口规模,也显示出在解决方案空间上的快速单调搜索。提出了一种平均场理论方法,表明MAs的基本动力学接近多物种竞争的生态模型。

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