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The evolution of dispersal distance in spatially-structured populations

机译:空间结构种群中分散距离的演变

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Most evolutionary models of dispersal have concentrated on dispersal rate, with emigration being either global or restricted to nearest neighbours. Yet most organisms fall into an intermediate region where most dispersal is local but there is a wide range of dispersal distances. We use an individual-based model with 2500 patches each with identical local dynamics and show that the dispersal distance is under selection pressure. The dispersal distance that evolves is critically dependent on the ecological dynamics. When the cost of dispersal increases linearly with distance, selection is for short-distance dispersal under stable and damped local dynamics but longer distance dispersal is favoured as local dynamics become more complex. For the cases of stable, damped and periodic patch dynamics global patch synchrony occurs even with very short-distance dispersal. Increasing the scale of dispersal for chaotic local dynamics increases the scale of synchrony but global synchrony does not neccesarily occur. We discuss these results in the light of other possible causes of dispersal and argue for the importance of incorporating non-equilibrium population dynamics into evolutionary models of dispersal distance.
机译:大多数的扩散扩散模型都集中在扩散速率上,而迁移是全球性的,或仅限于最近的邻居。然而,大多数生物都落入中间区域,在该区域中,大多数扩散是局部的,但扩散距离范围很广。我们使用基于个人的模型,每个模型具有2500个斑块,每个斑块具有相同的局部动力学,并表明分散距离处于选择压力下。所散布的距离主要取决于生态动力学。当分散的成本随距离线性增加时,选择是在稳定和阻尼的局部动力学条件下进行短距离分散,但随着局部动力学变得更加复杂,则需要较长的分散距离。对于稳定,阻尼和周期性补丁动态的情况,即使具有非常短的距离分散,也会发生全局补丁同步。对于混沌局部动力学而言,分散的尺度增加会增加同步的尺度,但是并不一定会发生全局同步。我们根据扩散的其他可能原因讨论了这些结果,并提出了将非平衡种群动态纳入扩散距离演化模型的重要性。

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