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  3. Ecology and Evolutionary Biology / 生態學與演化生物學研究所
  4. Structural bias in aggregated species-level variables driven by repeated species co-occurrences: A pervasive problem in community and assemblage data
 
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Structural bias in aggregated species-level variables driven by repeated species co-occurrences: A pervasive problem in community and assemblage data

Journal
Journal of Biogeography
Journal Volume
44
Journal Issue
6
Pages
1199-1211
Date Issued
2017
Author(s)
David Zelený  
DOI
10.1111/jbi.12953
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-85013345367&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/399844
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85013345367&doi=10.1111%2fjbi.12953&partnerID=40&md5=8105dce36f1c093d3e23295c956ae2a7
Abstract
Aim: Species attributes are often used to explain diversity patterns across assemblages/communities. However, repeated species co-occurrences can generate spatial pattern and strong statistical relationships between aggregated attributes and richness in the absence of biological information. Our aim is to increase awareness of this problem. Location: North America. Methods: We generated empirical species richness patterns using two data structures: (1) birds gridded from range maps and (2) tree communities from the US Forest Service's Forest Inventory and Analysis. We analysed richness using linear regression, regression trees, generalized additive models, geographically weighted regression and simultaneous autoregression, with ‘random intrinsic variables’ as predictors generated by assigning random numbers to species and calculating averages in assemblages. We then generated simulations in which species with cohesive or patchy distributions are placed with respect to the North American temperature gradient with or without a broad-scale richness gradient. Random intrinsic variables are again used as predictors of richness. Finally, we analysed one simulated scenario with random intrinsic variables as both response and predictor variables. Results: The models of bird and tree richness often explained moderate to large proportions of the variance. Regression trees, geographically weighted regression and simultaneous autoregression were very sensitive to the problem; generalized additive models were moderately affected, as was multiple regression to a lesser extent. In the virtual data, the variance explained increased with increasing species co-occurrences, but neither range cohesion, a richness gradient nor spatial autocorrelation in predictors had major impacts on the variance explained. The problem persisted when the response variable was also a random intrinsic variable. Main conclusions: Repeated species co-occurrences can generate strong spurious relationships between richness and aggregated species attributes. It is important to realize that models utilizing assemblage variables aggregated from species-level values, as well as maps illustrating their spatial patterns, cannot be taken at face value.
Subjects
community structure; community weighted means; geographical ecology; intrinsic variables; spatial analysis; species co-occurrence; species composition; species richness gradients; trait analysis
Other Subjects
bird; community ecology; community structure; data set; ecological modeling; forest inventory; geographical variation; multiple regression; spatial analysis; species occurrence; species richness; temperature gradient; United States; Aves
Publisher
Blackwell Publishing Ltd
Type
journal article

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