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Testing the Intermediate Disturbance Hypothesis: Effect of Asynchronous Population Incorporation on Multi-Deme Evolutionary Algorithms

机译:测试中间干扰假设:异步人口掺入对多排放进化算法的影响

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In P2P and volunteer computing environments, resources are not always available from the beginning to the end, getting incorporated into the experiment at any moment. Determining the best way of using these resources so that the exploration/exploitation balance is kept and used to its best effect is an important issue. The Intermediate Disturbance Hypothesis states that a moderate population disturbance (in any sense that could affect the population fitness) results in the maximum ecological diversity. In the line of this hypothesis, we will test the effect of incorporation of a second population in a two-population experiment. Experiments performed on two combinatorial optimization problems, MMDP and P-Peaks, show that the highest algorithmic effect is produced if it is done in the middle of the evolution of the first population; starting them at the same time or towards the end yields no improvement or an increase in the number of evaluations needed to reach a solution. This effect is explained in the paper, and ascribed to the intermediate disturbance produced by first-population immigrants in the second population.
机译:在P2P和志愿者计算环境中,资源并不总是从头到尾提供,在任何时候都结合到实验中。确定使用这些资源的最佳方式,以便保存探索/剥削平衡并用于其最佳效果是一个重要问题。中间扰动假设表明,适度的人口紊乱(在任何可能影响人口健康的意义上)导致最大的生态多样性。在这一假设的线路中,我们将测试在双人口实验中纳入第二个人群的效果。在两个组合优化问题,MMDP和P峰值上进行的实验表明,如果在第一群体的演变中间完成,则产生最高算法效果;同时启动它们或朝向最终产生没有改进或增加达到解决方案所需的评估数量。本文解释了这种效果,并归因于二次群体中的第一人口移民产生的中间干扰。

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