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Leveraging relationships between species abundances to improve predictions and inform conservation

Publication ,  Journal Article
Scher, CL; Roberts, SM; Krause, KP; Clark, JS
Published in: Journal of Applied Ecology
July 1, 2024

Many management and conservation contexts can benefit from understanding relationships between species abundances, which can be used to improve predictions of species occurrence and abundance. We present conditional prediction as a tool to capture information about species abundances via residual covariance between species. From a fitted joint species distribution model, this framework produces a species coefficient matrix that contains relationships between species abundances. The species coefficients allow co-observed species to be treated as a second set of predictors supplementing covariates in the model to improve prediction. We use simulations to demonstrate the potential benefits and limitations of conditional prediction across data types and species covariance before applying conditional prediction to two management contexts with real data. Simulations demonstrate that conditional prediction provides the largest benefits to continuous data and when there is residual covariance between many species. In our first application, we show that conditioning on other species improves in-sample and out-of-sample predictions of fish and invertebrate species, including Atlantic cod. In our second application, we show that the species coefficient matrix can be used to identify bird species at risk of nest parasitism by Brown-headed Cowbirds. Synthesis and applications. We present guidelines for using conditional prediction, which can help understand relationships between species abundances, improve predictions and inform conservation in a variety of contexts.

Duke Scholars

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Published In

Journal of Applied Ecology

DOI

EISSN

1365-2664

ISSN

0021-8901

Publication Date

July 1, 2024

Volume

61

Issue

7

Start / End Page

1662 / 1672

Related Subject Headings

  • Ecology
  • 4104 Environmental management
  • 3109 Zoology
  • 3103 Ecology
  • 0602 Ecology
  • 0502 Environmental Science and Management
  • 0501 Ecological Applications
 

Citation

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Scher, C. L., Roberts, S. M., Krause, K. P., & Clark, J. S. (2024). Leveraging relationships between species abundances to improve predictions and inform conservation. Journal of Applied Ecology, 61(7), 1662–1672. https://doi.org/10.1111/1365-2664.14670
Scher, C. L., S. M. Roberts, K. P. Krause, and J. S. Clark. “Leveraging relationships between species abundances to improve predictions and inform conservation.” Journal of Applied Ecology 61, no. 7 (July 1, 2024): 1662–72. https://doi.org/10.1111/1365-2664.14670.
Scher CL, Roberts SM, Krause KP, Clark JS. Leveraging relationships between species abundances to improve predictions and inform conservation. Journal of Applied Ecology. 2024 Jul 1;61(7):1662–72.
Scher, C. L., et al. “Leveraging relationships between species abundances to improve predictions and inform conservation.” Journal of Applied Ecology, vol. 61, no. 7, July 2024, pp. 1662–72. Scopus, doi:10.1111/1365-2664.14670.
Scher CL, Roberts SM, Krause KP, Clark JS. Leveraging relationships between species abundances to improve predictions and inform conservation. Journal of Applied Ecology. 2024 Jul 1;61(7):1662–1672.
Journal cover image

Published In

Journal of Applied Ecology

DOI

EISSN

1365-2664

ISSN

0021-8901

Publication Date

July 1, 2024

Volume

61

Issue

7

Start / End Page

1662 / 1672

Related Subject Headings

  • Ecology
  • 4104 Environmental management
  • 3109 Zoology
  • 3103 Ecology
  • 0602 Ecology
  • 0502 Environmental Science and Management
  • 0501 Ecological Applications