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Acquisition of General Adaptive Features by Evolution

机译:通过进化获取通用自适应特征

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We investigate the following question. Do populations of evolving agents adapt only to their recent environment or do general adaptive features appear over time? We find statistically significant appearance of general adaptive features in a spatially distributed population of prisoner's dilemma playing agents in a noisy environment. Multiple populations are evolved in an evolutionary algorithm structured as a cellular automaton with states drawn from a rich set of prisoner's dilemma strategies. Populations are sampled early and at the end of a ten-thousand generation simulation. Modern and archain populations are then placed in competition. We test the hypothesis that competition between an archaic and modern population yields probability p = 0.5 of modern populations out-competing archaic ones. The hypothesis is rejected at a confidence level of 99.5percent using a binomial probability model in each of seven variations of our basic experiment.
机译:我们调查以下问题。进化中的特工群体是否只适应他们最近的环境,还是随着时间的推移出现了一般的适应特征?我们发现,在嘈杂的环境中,囚徒困境扮演者在空间上分布的总体适应性特征在统计学上具有重要意义。多个种群在一种构造为细胞自动机的进化算法中进化,其状态来自丰富的囚徒困境策略。在1万代模拟的早期和结束时对种群进行采样。然后,现代人和archain人群将参与竞争。我们检验了一个假设,即古老人口与现代人口之间的竞争产生了现代人口胜过古老人口的概率p = 0.5。在我们的基础实验的七个变体中,使用二项式概率模型以99.5%的置信度拒绝了该假设。

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