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揭示时间周期性、空间环境和行为模式在陆地动物运动中的作用。

Unveiling the roles of temporal periodicity, the spatial environment and behavioural modes in terrestrial animal movement.

作者信息

Linssen Hans, de Knegt Henrik J, Eikelboom Jasper A J

机构信息

Wildlife Ecology and Conservation Group, Wageningen University and Research, Droevendaalsesteeg 3a, Wageningen, 6708 PB, The Netherlands.

Department of Theoretical and Computational Ecology, Institute for Biodiversity and Ecosystem Dynamics, University of Amsterdam, P.O. Box 94240, Amsterdam, 1090 GE, The Netherlands.

出版信息

Mov Ecol. 2024 Aug 26;12(1):57. doi: 10.1186/s40462-024-00489-3.

Abstract

BACKGROUND

Animal movement arises from complex interactions between animals and their heterogeneous environment. To better understand the movement process, it can be divided into behavioural, temporal and spatial components. Although methods exist to address those various components, it remains challenging to integrate them in a single movement analysis.

METHODS

We present an analytic workflow that integrates the behavioural, temporal and spatial components of the movement process and their interactions, which also allows for the assessment of the relative importance of those components. We construct a daily cyclic covariate to represent temporally cyclic movement patterns, such as diel variation in activity, and combine the three components in a multi-modal Hidden Markov Model framework using existing methods and R functions. We compare the trends and statistical fits of models that include or exclude any of the behavioural, spatial and temporal components, and perform variance partitioning on the model predictions that included all components to assess their relative importance to the movement process, both in isolation and in interaction.

RESULTS

We apply our workflow to a case study on the movements of plains zebra, blue wildebeest and eland antelope in a South African reserve. Behavioural modes impacted movement the most, followed by diel rhythms and then the spatial environment (viz. tree cover and terrain slope). Interactions between the components often explained more of the movement variation than the marginal effect of the spatial environment did on its own. Omitting components from the analysis led either to the inability to detect relationships between input and response variables, resulting in overgeneralisations when drawing conclusions about the movement process, or to detections of questionable relationships that appeared to be spurious.

CONCLUSIONS

Our analytic workflow can be used to integrate the behavioural, temporal and spatial components of the movement process and quantify their relative contributions, thereby preventing incomplete or overly generic ecological interpretations. We demonstrate that understanding the drivers of animal movement, and ultimately the ecological phenomena that emerge from it, critically depends on considering the various components of the movement process, and especially the interactions between them.

摘要

背景

动物的运动源于动物与其异质环境之间的复杂相互作用。为了更好地理解运动过程,可以将其分为行为、时间和空间成分。尽管存在处理这些不同成分的方法,但将它们整合到单一的运动分析中仍然具有挑战性。

方法

我们提出了一种分析工作流程,该流程整合了运动过程的行为、时间和空间成分及其相互作用,还允许评估这些成分的相对重要性。我们构建了一个每日循环协变量来表示时间上的循环运动模式,例如活动的昼夜变化,并使用现有方法和R函数在多模态隐马尔可夫模型框架中结合这三个成分。我们比较了包含或排除任何行为、空间和时间成分的模型的趋势和统计拟合,并对包含所有成分的模型预测进行方差分解,以评估它们在单独和相互作用时对运动过程的相对重要性。

结果

我们将工作流程应用于一个关于南非保护区内平原斑马、蓝角马和大羚羊运动的案例研究。行为模式对运动的影响最大,其次是昼夜节律,然后是空间环境(即树木覆盖和地形坡度)。成分之间的相互作用通常比空间环境自身的边际效应解释了更多的运动变化。从分析中省略成分要么导致无法检测输入和响应变量之间的关系,从而在得出关于运动过程的结论时产生过度概括,要么导致检测到看似虚假的可疑关系。

结论

我们的分析工作流程可用于整合运动过程的行为、时间和空间成分,并量化它们的相对贡献,从而防止不完整或过于笼统的生态学解释。我们证明,理解动物运动的驱动因素以及最终由此产生的生态现象,关键取决于考虑运动过程的各种成分,尤其是它们之间的相互作用。

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