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首页> 外文期刊>Oikos: A Journal of Ecology >Spatial autocorrelation analysis allows disentangling the balance between neutral and niche processes in metacommunities
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Spatial autocorrelation analysis allows disentangling the balance between neutral and niche processes in metacommunities

机译:空间自相关分析允许解开元社区中性和利基过程之间的平衡

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One of the most popular approaches for investigating the roles of niche and neutral processes driving metacommunity patterns consists of partitioning variation in species data into environmental and spatial components. The logic is that the distance decay of similarity in communities is expected under neutral models. However, because environmental variation is often spatially structured, the decay could also be attributed to environmental factors that are missing from the analysis. Here, we use a spatial autocorrelation analysis protocol, previously developed to detect isolation-by-distance in allele frequencies, to evaluate patterns of species abundances under neutral dynamics. We show that this protocol can be linked with variation partitioning analyses. Moreover, in an attempt to test the neutral model, we derive three predictions to be applied both to original species abundances and to abundances predicted by a pure spatial model species abundances will be uncorrelated; Moran's I correlograms will reveal similar short-distance autocorrelation patterns; an increasing degree of non-neutrality will tend to generate patterns of correlation among abundances within groups of species with similar correlograms (i.e. within species with neutral and non-neutral dynamics). We illustrate our protocol by analyzing spatial patterns in abundance of 28 terrestrially breeding anuran species from Central Amazonia. We recommend that researchers should investigate spatial autocorrelation patterns of abundances predicted by pure spatial models to identify similar patterns of spatial autocorrelation at short distances and lack of correlation between species abundances. Therefore, the hypothesis that spatial patterns in abundances are primarily due to pure neutral dynamics (rather than to missing spatiallystructured environmental factors) can be confirmed after taking environmental variables into account.
机译:调查利基和中性过程驱动元社区模式作用的最流行方法之一是将物种数据的变化分为环境和空间成分。逻辑是,在中性模型下,社区相似性的距离衰减是可以预期的。但是,由于环境变化通常是空间结构的,因此衰减也可能归因于分析中缺少的环境因素。在这里,我们使用先前开发的空间自相关分析协议来检测等位基因频率的距离隔离,以评估中性动力学下物种丰度的模式。我们表明该协议可以与变异分区分析联系起来。此外,为了测试中性模型,我们推导了三个预测,这些预测将同时应用于原始物种的丰度和纯空间模型预测的物种丰度将不相关; Moran's I相关图将显示相似的短距离自相关模式;越来越多的非中性将倾向于在具有相似相关图的物种组内(即具有中性和非中性动力学的物种内)的丰度之间产生相关性模式。我们通过分析来自中亚马孙地区的28种陆地繁殖无色物种的空间格局来说明我们的协议。我们建议研究人员应调查纯空间模型预测的丰度的空间自相关模式,以识别短距离且物种丰度之间缺乏相关性的相似空间自相关模式。因此,可以在考虑环境变量后证实以下假设:大量的空间格局主要是由于纯中性动力学(而不是由于缺少空间结构化的环境因素)引起的。

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