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The role of transient dynamics in stochastic population growth for nine perennial plants

机译:瞬态动力学在九种多年生植物随机种群增长中的作用

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Most populations exist in variable environments. Two sets of theory have been developed to address this variability. Stochastic dynamics focus on variation in population growth rates based on random differences in vital rates such as growth, survival, and reproduction. Transient dynamics focus on short-term, deterministic responses to changes in the stage distribution of individuals. These processes are related: demographic variation shifts stage structures, producing transient responses, which then contribute to the overall variability of population growth rate. The relative contributions of vital rates vs. transient responses to stochastic dynamics, and the implications for transient analyses, are unclear. This study explores the role of transient responses in stochastic dynamics of nine perennial plant species. Across the species, transient responses contributed more on average to variability in annual population growth rates than did variation in vital rates alone. Transient potential of an average matrix was indicative of the contribution of transient dynamics, although these metrics varied greatly across years. Transient responses were often in the opposite direction as demographic variation, suggesting that transient dynamics may at times have a buffering effect on populations. Overall, transient dynamics had an important role in modulating environmental variation, with implications for both processes in understanding stochastic dynamics.
机译:大多数人口存在于变化的环境中。已经开发出两组理论来解决这种可变性。随机动力学着眼于人口增长率的变化,该变化基于生命率(例如生长,生存和繁殖)的随机差异。瞬态动力学着重于对个体阶段分布变化的短期确定性响应。这些过程是相关的:人口统计变化会改变阶段结构,产生瞬态响应,然后造成人口增长率的总体变化。目前尚不清楚生命率与瞬态响应对随机动力学的相对贡献以及对瞬态分析的影响。这项研究探讨了瞬态响应在9种多年生植物物种随机动态中的作用。在整个物种中,瞬时响应对人口年增长率变化的平均影响要大于对单独生命率变化的影响。尽管这些指标多年来变化很大,但平均矩阵的瞬态电势表明了瞬态动力学的贡献。瞬态响应通常与人口统计学变化方向相反,表明瞬态动力学有时可能会对种群产生缓冲作用。总体而言,瞬态动力学在调节环境变化方面起着重要作用,这对理解随机动力学的两个过程都具有重要意义。

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