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Co‐adaptation impacts the robustness of predator–prey dynamics against perturbations

机译:共适应影响捕食者—食饵动力学抵御扰动的鲁棒性

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摘要

Global change threatens the maintenance of ecosystem functions that are shaped by the persistence and dynamics of populations. It has been shown that the persistence of species increases if they possess larger trait adaptability. Here, we investigate whether trait adaptability also affects the robustness of population dynamics of interacting species and thereby shapes the reliability of ecosystem functions that are driven by these dynamics. We model co‐adaptation in a predator–prey system as changes to predator offense and prey defense due to evolution or phenotypic plasticity. We investigate how trait adaptation affects the robustness of population dynamics against press perturbations to environmental parameters and against pulse perturbations targeting species abundances and their trait values. Robustness of population dynamics is characterized by resilience, elasticity, and resistance. In addition to employing established measures for resilience and elasticity against pulse perturbations (extinction probability and return time), we propose the warping distance as a new measure for resistance against press perturbations, which compares the shapes and amplitudes of pre‐ and post‐perturbation population dynamics. As expected, we find that the robustness of population dynamics depends on the speed of adaptation, but in nontrivial ways. Elasticity increases with speed of adaptation as the system returns more rapidly to the pre‐perturbation state. Resilience, in turn, is enhanced by intermediate speeds of adaptation, as here trait adaptation dampens biomass oscillations. The resistance of population dynamics strongly depends on the target of the press perturbation, preventing a simple relationship with the adaptation speed. In general, we find that low robustness often coincides with high amplitudes of population dynamics. Hence, amplitudes may indicate the robustness against perturbations also in other natural systems with similar dynamics. Our findings show that besides counteracting extinctions, trait adaptation indeed strongly affects the robustness of population dynamics against press and pulse perturbations.
机译:全球变化威胁到由人口的持久性和动态性影响的生态系统功能的维持。已经表明,如果物种具有更大的性状适应性,它们的持久性就会增加。在这里,我们调查性状适应性是否也会影响相互作用物种种群动态的鲁棒性,从而塑造由这些动态驱动的生态系统功能的可靠性。我们将由于进化或表型可塑性引起的捕食者-被捕者系统的变化与捕食者-被捕者系统的共适应建模。我们调查特质适应如何影响种群动态的鲁棒性,以抵抗环境参数的摄动扰动以及针对物种丰富度及其特征值的脉冲扰动。种群动态的健壮性具有弹性,弹性和抵抗力。除了采用针对脉冲摄动的弹性和弹性(消灭概率和返回时间)的既定措施外,我们还将翘曲距离作为抵抗压力摄动的一种新措施,它比较了摄动前后人群的形状和幅度。动力学。正如预期的那样,我们发现人口动态变化的鲁棒性取决于适应的速度,但以非平凡的方式。随着系统更快地返回到摄动前状态,弹性会随着适应速度的增加而增加。适应性的中间速度又提高了适应力,因为这里的性状适应可以抑制生物量的振荡。种群动态的阻力在很大程度上取决于印刷机扰动的目标,从而阻止了与适应速度的简单关系。通常,我们发现低鲁棒性通常与人口动态的高幅度相吻合。因此,在具有类似动力学的其他自然系统中,振幅也可以指示抗扰动的鲁棒性。我们的研究结果表明,除了可以消除物种灭绝外,特质的适应性确实会极大地影响种群动态对冲动和脉冲扰动的鲁棒性。

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