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首页> 外文期刊>Journal of Vegetation Science >Multi-species interactions in competitive hierarchies: new methods and empirical test.
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Multi-species interactions in competitive hierarchies: new methods and empirical test.

机译:竞争层次结构中的多物种交互作用:新方法和实证检验。

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Question: Are competitive hierarchies, which are typically based on the results of pair-wise competition experiments, sensitive to the level of species interaction in the underlying competition experiments? Location: Controlled greenhouse study using vegetation typical of old-fields in East Tennessee, USA. Methods: We extend traditional competitive effect/response methods to incorporate data from competition experiments featuring any level of species interaction (i. e., 2,3,.,., n species interacting simultaneously) and develop an ordinal technique that makes hierarchies more robust to variation in the numerical values of relative yield. We apply these methodological techniques to empirical data from a greenhouse experiment wherein four old-field plant species were grown in pair-wise and tri-wise combination. We also demonstrate how resampling can be used to determine the variability of data and its consequences for development of competitive hierarchies. Results: Different hierarchies were produced when we used different evaluation methods, different levels of species interaction, and different levels of replication. More acute resampling distributions and wider ranges of targeteighbor scores revealed that higher levels of species interaction lead to more distinct hierarchies. Conclusions: Hierarchies developed from interactions among subsets of species may inadequately characterize relationships among the full community because of indirect or higher-order interactions within multi-species assemblages. Different evaluation methods can yield different hierarchies, and resampling is an effective tool to determine the sensitivity of resultant hierarchies to the level of replication. In sum, our new methodology can be used to control uncertainty in poorly-replicated experiments.
机译:问题:通常基于成对竞争实验结果的竞争层次结构对基础竞争实验中物种相互作用的水平敏感吗?地点:在美国东田纳西州进行的温室控制研究,采用的是典型的老田典型植被。方法:我们扩展了传统的竞争效应/反应方法,以结合来自具有任何水平的物种相互作用(即2,3,。,。,n个物种同时相互作用)的竞争实验的数据,并开发了一种序数技术,该技术使层次结构对变化更稳健在相对产量的数值。我们将这些方法学技术应用于温室实验的经验数据,其中四个老田植物物种分别以成对和三向组合生长。我们还演示了如何使用重采样来确定数据的可变性及其对竞争性层次结构发展的影响。结果:当我们使用不同的评估方法,不同级别的物种相互作用和不同级别的复制时,会产生不同的层次结构。更尖锐的重采样分布和更广泛的目标/邻居分数范围表明,更高水平的物种相互作用导致更独特的层次结构。结论:由于多物种组合中的间接或高阶交互,物种子集之间的相互作用所形成的层次结构可能无法充分描述整个社区之间的关系。不同的评估方法可以产生不同的层次结构,重采样是确定所得层次结构对复制级别的敏感性的有效工具。总之,我们的新方法可用于控制重复性较差的实验中的不确定性。

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