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Temporal plasticity in habitat selection criteria explains patterns of animal dispersal

机译:栖息地选择标准的时间可塑性解释了动物传播的方式

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摘要

Patterns of dispersal behavior are often driven by the composition and configuration of suitable habitat in a matrix of unsuitable habitat. Interactions between animal behavior and landscapes can therefore influence population dynamics, population and species distributions, population genetic structure, and the evolution of behavior. Spatially explicit individual-based models (IBMs) are ideal tools for exploring the effects of landscape structure on dispersal. We developed an empirically parameterized IBM in the modeling framework SEARCH to simulate dispersal of translocated American martens in Wisconsin. We tested the hypothesis that a time-limited disperser should be willing to settle in lower quality habitat over time. To evaluate model performance, we used a pattern-oriented modeling approach. Our best model matched all empirical dispersal patterns (e.g., dispersal distance) except time to settlement. This model incorporated a required search phase as well as the mechanism for declining habitat selectivity over time, which represents the first demonstration of this hypothesis for a vertebrate species. We suggest that temporal plasticity in habitat selectivity allows individuals to maximize fitness by making a tradeoff between habitat quality and risk of mortality. Our IBM is pragmatic in that it addresses a management need for a species of conservation concern. However, our model is also paradigmatic in that we explicitly tested a theory of dispersal behavior. Linking these 2 approaches to ecological modeling can further the utility of individual-based modeling and provide direction for future theoretical and empirical work on animal behavior.
机译:分散行为的模式通常是由不合适的生境矩阵中合适的生境的组成和配置所驱动的。因此,动物行为与景观之间的相互作用会影响种群动态,种群和物种分布,种群遗传结构以及行为演变。空间明确的基于个人的模型(IBMs)是探索景观结构对分散影响的理想工具。我们在SEARCH建模框架中开发了一个经验参数化的IBM,以模拟易位的美国貂在威斯康星州的扩散。我们检验了一个假设,即随着时间的流逝,限时分散器应愿意在质量较低的栖息地安家。为了评估模型性能,我们使用了面向模式的建模方法。我们最好的模型匹配了所有经验扩散模式(例如,扩散距离),但结算时间除外。该模型结合了所需的搜索阶段以及随时间推移而降低栖息地选择性的机制,这是对脊椎动物物种这一假设的首次证明。我们建议栖息地选择性的时间可塑性通过在栖息地质量和死亡风险之间进行权衡来使个体最大化适应性。我们的IBM务实,因为它满足了对某种保护问题的管理需求。但是,我们的模型也是范式的,因为我们明确测试了分散行为的理论。将这两种方法与生态建模联系起来,可以进一步促进基于个体的建模的实用性,并为今后有关动物行为的理论和实证研究提供指导。

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