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The importance of assessing parameter sensitivity when using biophysical models: a case study using plethodontid salamanders

机译:使用生物物理模型评估参数敏感性的重要性:使用过滤蝾螈的案例研究

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Landscapes are continually changing due to numerous assaults, including habitat alteration, anthropogenic disturbances, and climate change. Understanding how species will respond to these changes is of critical importance for conservation and management. Mechanistic models, such as biophysical models (BPMs), are an increasingly popular tool to predict how local population dynamics or species' distributions may be altered in response to environmental and climate changes. By mechanistically modeling relationships between environmental conditions, physiology and behavior, it is possible to make accurate predictions about how species may respond. However, BPMs are often difficult to implement due to lack of appropriate, species-specific data that is biologically realistic or relevant. In this study, we present a BPM for the salamander Plethodon jordani and assess how adding more biological realism has potential to alter model predictions about annual energy budgets. Additionally, we conducted local and global sensitivity analyses to evaluate the importance of accurately specifying model parameter values and functional relationships. We found that the addition of biological realism resulted in greater model complexity as well as substantially different estimates of energy balance. Correct parameterization of biophysical models is also critical, as small changes in parameter values can result in disproportionately large changes in downstream model estimates. Our model highlights the overall importance of using ecologically relevant and specific data for input parameters, as well as careful assessment of parameter sensitivity. We encourage researchers to be aware of the data they are using to parameterize BPMs, and urge the collection of system-specific data that is relevant in spatial and temporal scale. We also recommend greater and more transparent use of sensitivity analyses to provide a better understanding of the model, as well as greater confidence in model predictions.
机译:由于栖息地改变、人为干扰和气候变化等众多袭击,景观不断变化。了解物种如何应对这些变化对保护和管理至关重要。机械模型,如生物物理模型(BPMs),是预测当地种群动态或物种分布如何因环境和气候变化而改变的越来越流行的工具。通过对环境条件、生理学和行为之间的关系进行力学建模,可以准确预测物种的反应方式。然而,由于缺乏合适的、特定物种的、生物学上现实的或相关的数据,BPM往往难以实施。在这项研究中,我们提出了约旦蝾螈的BPM,并评估增加更多的生物现实主义如何有可能改变关于年度能源预算的模型预测。此外,我们还进行了局部和全局敏感性分析,以评估准确指定模型参数值和功能关系的重要性。我们发现,生物现实主义的加入导致了更大的模型复杂性以及对能量平衡的不同估计。生物物理模型的正确参数化也很关键,因为参数值的微小变化可能会导致下游模型估计值发生不成比例的大变化。我们的模型强调了使用生态相关和特定数据作为输入参数以及仔细评估参数敏感性的整体重要性。我们鼓励研究人员了解他们用于参数化BPM的数据,并敦促收集与时空尺度相关的系统特定数据。我们还建议更多、更透明地使用敏感性分析,以更好地理解模型,并提高模型预测的可信度。

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