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Approximate probabilistic cellular automata for the dynamics of single-species populations under discrete logisticlike growth with and without weak Allee effects

机译:近似概率蜂窝自动机,为单一物种群体下的离散逻辑生长下的动态,无弱索法效应

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摘要

We investigate one-dimensional elementary probabilistic cellular automata (PCA) whose dynamics in firstorder mean-field approximation yields discrete logisticlike growth models for a single-species unstructured population with nonoverlapping generations. Beginning with a general six-parameter model, we find constraints on the transition probabilities of the PCA that guarantee that the ensuing approximations make sense in terms of population dynamics and classify the valid combinations thereof. Several possible models display a negative cubic term that can be interpreted as a weak Allee factor. We also investigate the conditions under which a one-parameter PCA derived from the more general six-parameter model can generate valid population growth dynamics. Numerical simulations illustrate the behavior of some of the PCA found.
机译:我们调查一维基础概率蜂窝自动机(PCA),其第一阶易磁场近似的动力学产生离散的Logisticlike的生长模型,用于单一物种非结构化群体,其具有非构建人口。 从一般的六参数模型开始,我们发现PCA的转换概率的约束,以保证随后的近似在人口动态方面发出意义,并对其有效组合进行分类。 若干可能的模型显示一个负面的立方术语,可以被解释为弱的含量因素。 我们还研究了从六参数模型中导出的一个参数PCA的条件可以产生有效的人口增长动态。 数值模拟说明了一些PCA的行为。

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