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Accounting for the influence of dissimilarity gradients on community uniqueness
by
Gillis, Anthony J.
, Lai, Hao Ran
, Tonkin, Jonathan D.
, Hernández-Carrasco, Daniel
, Siqueira, Tadeu
in
Ecology
2025
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Accounting for the influence of dissimilarity gradients on community uniqueness
by
Gillis, Anthony J.
, Lai, Hao Ran
, Tonkin, Jonathan D.
, Hernández-Carrasco, Daniel
, Siqueira, Tadeu
in
Ecology
2025
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Accounting for the influence of dissimilarity gradients on community uniqueness
Paper
Accounting for the influence of dissimilarity gradients on community uniqueness
2025
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Overview
Compositional uniqueness has become increasingly relevant for understanding how local communities contribute to regional biodiversity. The most widely used metric is the Local Contribution to Beta Diversity (LCBD), which is typically regressed against environmental predictors. However, LCBD can vary either because of environmental processes that affect the overall variance in community composition, or because communities change directionally along environmental gradients. The latter implies that LCBD–environment relationships can strongly depend on how the environment is sampled. To address this issue, we introduce Generalised Dissimilarity Uniqueness Models (GDUM), a framework that embeds effects on community uniqueness within pairwise dissimilarity modelling. GDUMs are consistent with conventional uniqueness models, while explicitly accounting for directional changes in composition. This distinction disentangles directional and non-directional drivers of beta diversity, such as environmental filtering versus stochastic processes. By improving interpretability and generalizability, GDUM is a useful tool for understanding beta diversity patterns and projecting biodiversity responses.
Publisher
Cold Spring Harbor Laboratory
Subject
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