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Nonlinear partitioning of biodiversity effects on ecosystem functioning

Summary Assessing the consequences of biodiversity changes for ecosystem functioning requires separating the net effect of biodiversity from potential confounding effects such as the identity of the gained or lost… Click to show full abstract

Summary Assessing the consequences of biodiversity changes for ecosystem functioning requires separating the net effect of biodiversity from potential confounding effects such as the identity of the gained or lost species. Additive partitioning methods allow factoring out these species identify effects by comparing species’ functional contributions against the predictions of a null model under which functional contributions are independent of biodiversity. Classic additive partitioning methods quantify biodiversity effects based on a linear relationship between species deviations from the null model and their functional traits. However, based on ecological theory, non-linear relationships are also possible. Here we demonstrate how additive-partitioning methods can be extended to describe such non-linear relationships, and explain how non-linear biodiversity effects can be interpreted. We apply both linear and non-linear partitioning methods to the Cedar Creek biodiversity II experiment. Non-linear relationships were detected in the majority of plots, and increased with diversity. Non-linear partitioning thereby identified a convex relationship between species functional traits and their deviations from the null model, driven by strong positive effects of both species with low and high functional trait values trait values on ecosystem functioning. The presented non-linear extension of additive partitioning methods is therefore essential for revealing more complex biodiversity effects on ecosystem functioning, which are likely to occur in biodiversity experiments. This article is protected by copyright. All rights reserved.

Keywords: additive partitioning; partitioning methods; biodiversity effects; non linear; biodiversity; ecosystem functioning

Journal Title: Methods in Ecology and Evolution
Year Published: 2017

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