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Toward a methodical framework for comprehensively assessing forest multifunctionality

机译:建立全面评估森林多功能性的方法框架

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摘要

Biodiversity–ecosystem functioning (BEF) research has extended its scope from communities that are short‐lived or reshape their structure annually to structurally complex forest ecosystems. The establishment of tree diversity experiments poses specific methodological challenges for assessing the multiple functions provided by forest ecosystems. In particular, methodological inconsistencies and nonstandardized protocols impede the analysis of multifunctionality within, and comparability across the increasing number of tree diversity experiments. By providing an overview on key methods currently applied in one of the largest forest biodiversity experiments, we show how methods differing in scale and simplicity can be combined to retrieve consistent data allowing novel insights into forest ecosystem functioning. Furthermore, we discuss and develop recommendations for the integration and transferability of diverse methodical approaches to present and future forest biodiversity experiments. We identified four principles that should guide basic decisions concerning method selection for tree diversity experiments and forest BEF research: (1) method selection should be directed toward maximizing data density to increase the number of measured variables in each plot. (2) Methods should cover all relevant scales of the experiment to consider scale dependencies of biodiversity effects. (3) The same variable should be evaluated with the same method across space and time for adequate larger‐scale and longer‐time data analysis and to reduce errors due to changing measurement protocols. (4) Standardized, practical and rapid methods for assessing biodiversity and ecosystem functions should be promoted to increase comparability among forest BEF experiments. We demonstrate that currently available methods provide us with a sophisticated toolbox to improve a synergistic understanding of forest multifunctionality. However, these methods require further adjustment to the specific requirements of structurally complex and long‐lived forest ecosystems. By applying methods connecting relevant scales, trophic levels, and above‐ and belowground ecosystem compartments, knowledge gain from large tree diversity experiments can be optimized.
机译:生物多样性-生态系统功能(BEF)研究的范围已从每年寿命短或结构改变的社区扩展到结构复杂的森林生态系统。树木多样性实验的建立对评估森林生态系统提供的多种功能提出了具体的方法挑战。特别是,方法上的不一致和非标准化的协议阻碍了对越来越多的树木多样性实验的内部多功能性和可比性的分析。通过概述当前在最大的森林生物多样性实验之一中应用的关键方法,我们展示了如何将规模和简单性不同的方法结合起来,以检索一致的数据,从而获得对森林生态系统功能的新颖见解。此外,我们讨论并提出了有关目前和将来的森林生物多样性实验的各种方法方法的整合和可移植性的建议。我们确定了四个原则,这些原则应指导有关树木多样性实验和森林BEF研究方法选择的基本决定:(1)方法选择应针对最大化数据密度以增加每个图中的测量变量数量。 (2)方法应涵盖实验的所有相关规模,以考虑生物多样性影响的规模依赖性。 (3)应当在空间和时间上使用相同的方法对相同的变量进行评估,以进行足够的大规模和较长时间的数据分析,并减少由于更改测量协议而导致的误差。 (4)应当推广评估生物多样性和生态系统功能的标准化,实用和快速的方法,以提高森林BEF试验之间的可比性。我们证明了当前可用的方法为我们提供了一个完善的工具箱,以增进对森林多功能性的协同理解。但是,这些方法需要进一步调整,以适应结构复杂和寿命长的森林生态系统的特定要求。通过应用将相关尺度,营养水平以及地上和地下生态系统区隔联系起来的方法,可以优化大型树木多样性实验的知识获取。

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