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RangeShiftR

  • Reliably modelling the demographic and distributional responses of a species to environmental changes can be crucial for successful conservation and management planning. Process-based models have the potential to achieve this goal, but so far they remain underused for predictions of species' distributions. Individual-based models offer the additional capability to model inter-individual variation and evolutionary dynamics and thus capture adaptive responses to environmental change. We present RangeShiftR, an R implementation of a flexible individual-based modelling platform which simulates eco-evolutionary dynamics in a spatially explicit way. The package provides flexible and fast simulations by making the software RangeShifter available for the widely used statistical programming platform R. The package features additional auxiliary functions to support model specification and analysis of results. We provide an outline of the package's functionality, describe the underlying model structure with its main components and present aReliably modelling the demographic and distributional responses of a species to environmental changes can be crucial for successful conservation and management planning. Process-based models have the potential to achieve this goal, but so far they remain underused for predictions of species' distributions. Individual-based models offer the additional capability to model inter-individual variation and evolutionary dynamics and thus capture adaptive responses to environmental change. We present RangeShiftR, an R implementation of a flexible individual-based modelling platform which simulates eco-evolutionary dynamics in a spatially explicit way. The package provides flexible and fast simulations by making the software RangeShifter available for the widely used statistical programming platform R. The package features additional auxiliary functions to support model specification and analysis of results. We provide an outline of the package's functionality, describe the underlying model structure with its main components and present a short example. RangeShiftR offers substantial model complexity, especially for the demographic and dispersal processes. It comes with elaborate tutorials and comprehensive documentation to facilitate learning the software and provide help at all levels. As the core code is implemented in C++, the computations are fast. The complete source code is published under a public licence, making adaptations and contributions feasible. The RangeShiftR package facilitates the application of individual-based and mechanistic modelling to eco-evolutionary questions by operating a flexible and powerful simulation model from R. It allows effortless interoperation with existing packages to create streamlined workflows that can include data preparation, integrated model specification and results analysis. Moreover, the implementation in R strengthens the potential for coupling RangeShiftR with other models.show moreshow less

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Author details:Anne-Kathleen MalchowORCiDGND, Greta BocediORCiD, Stephen C. F. Palmer, Justin M. J. TravisORCiD, Damaris ZurellORCiDGND
DOI:https://doi.org/10.1111/ecog.05689
ISSN:1600-0587
Title of parent work (English):Ecography : pattern and diversity in ecology / Nordic Ecologic Society Oikos
Subtitle (English):an R package for individual-based simulation of spatial changes
Publisher:Wiley-Blackwell
Place of publishing:Oxford [u.a.]
Publication type:Article
Language:English
Date of first publication:2021/10/22
Publication year:2021
Release date:2024/01/24
Tag:connectivity; conservation; dispersal; evolution; population dynamics; range dynamics
Volume:44
Issue:10
Number of pages:10
First page:1443
Last Page:1452
Funding institution:Deutsche Forschungsgemeinschaft (DFG)German Research Foundation (DFG) [ZU 361/1-1]; Royal Society University Research FellowshipRoyal Society of London [UF160614]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Biochemie und Biologie
DDC classification:5 Naturwissenschaften und Mathematik / 57 Biowissenschaften; Biologie / 570 Biowissenschaften; Biologie
Peer review:Referiert
Publishing method:Open Access / Gold Open-Access
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License (English):License LogoCreative Commons - Namensnennung 3.0 Unported
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