| Literature DB >> 31209924 |
Amrita Gupta1, Bistra Dilkina1, Dana J Morin2, Angela K Fuller3, J Andrew Royle4, Christopher Sutherland2, Carla P Gomes5.
Abstract
Ecological distance-based spatial capture-recapture models (SCR) are a promising approach for simultaneously estimating animal density and connectivity, both of which affect spatial population processes and ultimately species persistence. We explored how SCR models can be integrated into reserve-design frameworks that explicitly acknowledge both the spatial distribution of individuals and their space use resulting from landscape structure. We formulated the design of wildlife reserves as a budget-constrained optimization problem and conducted a simulation to explore 3 different SCR-informed optimization objectives that prioritized different conservation goals by maximizing the number of protected individuals, reserve connectivity, and density-weighted connectivity. We also studied the effect on our 3 objectives of enforcing that the space-use requirements of individuals be met by the reserve for individuals to be considered conserved (referred to as home-range constraints). Maximizing local population density resulted in fragmented reserves that would likely not aid long-term population persistence, and maximizing the connectivity objective yielded reserves that protected the fewest individuals. However, maximizing density-weighted connectivity or preemptively imposing home-range constraints on reserve design yielded reserves of largely spatially compact sets of parcels covering high-density areas in the landscape with high functional connectivity between them. Our results quantify the extent to which reserve design is constrained by individual home-range requirements and highlight that accounting for individual space use in the objective and constraints can help in the design of reserves that balance abundance and connectivity in a biologically relevant manner.Keywords: captura-recaptura espacial; conectividad funcional, conservación de la conectividad; connectivity conservation; conservation planning; diseño de reservas; functional connectivity; integer linear programing; mathematical optimization; optimización matemática; planeación de la conservación; programación entera lineal; reserve design; spatial capture-recapture; 保护区设计; 保护规划; 功能连接度; 数学最优化; 整数线性规划; 空间捕获-重捕模型; 连接度保护
Year: 2019 PMID: 31209924 DOI: 10.1111/cobi.13369
Source DB: PubMed Journal: Conserv Biol ISSN: 0888-8892 Impact factor: 6.560