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Habitat loss-induced tipping points in metapopulations with facilitation

机译:栖息地损失引起的促进倾翻点,便于促进

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Habitat loss is known to pervade extinction thresholds in metapopulations. Such thresholds result from a loss of stability that can eventually lead to collapse. Several models have been developed to understand the nature of these transitions and how they are affected by the locality of interactions, fluctuations or external drivers. Most models consider the impact of grazing or aridity as a control parameter that can trigger sudden shifts, once critical values are reached. Others explore instead therole played by habitat loss and fragmentation. Here we consider a minimal model incorporating facilitation between the individuals of the same species along with habitat destruction, with the aim of understanding how local cooperation and habitat loss interact with each other. A mathematical model incorporating facilitation and habitat destruction is derived, along with a spatially explicit simulation model. It is found that a catastrophic shift is expected for increasing levels of habitat loss, but thebifurcation becomes continuous when dispersal is local. Under these conditions, spatial patchiness is found and the qualitative change from discontinuous to continuous results are in agreement with previous studies on ecological systems. Our results suggest that species exhibiting facilitation and displaying short-range dispersal will be markedly more capable of avoiding catastrophic tipping points.
机译:栖息地损失是普遍的灭绝阈值,以便在比例中已知。这种阈值由于稳定性的丧失而导致最终导致崩溃的损失。已经开发了几种模型来了解这些过渡的性质以及它们如何受到相互作用,波动或外部驱动因素的情况的影响。大多数模型认为,一旦达到临界值,就会考虑放牧或充满活力的影响,这是可以触发突然移位的控制参数。其他人在栖息地损失和碎片中探索。在这里,我们考虑一种最小的模型,其中包含相同物种的个人与栖息地破坏之间的促进,以了解当地合作和栖息地损失如何相互互动。推导出一种包含促进和栖息地破坏的数学模型以及空间显式仿真模型。结果发现,预期栖息地损失水平的灾难性转变,但当分散是局部时,纤维素变得连续。在这些条件下,发现空间斑块,并且不连续与持续结果的定性变化与先前的生态系统研究一致。我们的研究结果表明,展示促进和展示短程分散的物种将是显着的,能够避免灾难性的划分点。

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