Stand dynamics and tree coexistence in an analytical structured model: the role of recruitment
From MaRDI portal
Publication:1790775
DOI10.1016/J.JTBI.2013.05.012zbMath1397.92414OpenAlexW2023167338WikidataQ45335364 ScholiaQ45335364MaRDI QIDQ1790775
Miguel A. Zavala, Rafael Bravo de la Parra, Juan C. López-Marcos, Óscar Angulo
Publication date: 4 October 2018
Published in: Journal of Theoretical Biology (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.jtbi.2013.05.012
Related Items (4)
Analysis of an efficient integrator for a size-structured population model with a dynamical resource ⋮ Competition for light in forest population dynamics: from computer simulator to mathematical model ⋮ Study on the efficiency in the numerical integration of size-structured population models: error and computational cost ⋮ A population harvesting model with time and size competition dependence function
Cites Work
- Numerical analysis of a population model of marine invertebrates with different life stages
- Numerical approximation of singular asymptotic states for a size-structured population model with a dynamical resource
- Numerical study on the proliferation cells fraction of a tumour cord model
- Aggregation of individual trees and patches in forest succession models: Capturing variability with height structured, random, spatial distributions
- Mathematical biology. Vol. 1: An introduction.
- Co-dominance and succession in forest dynamics: the role of interspecific differences in crown transmissivity
- Numerical integration of fully nonlinear size-structured population models
- Size-structured population dynamics models and their numerical solutions
- An analytical model of stand dynamics as a function of tree growth, mortality and recruitment: the shade tolerance-stand structure hypothesis revisited
- A semi-Lagrangian method for a cell population model in a dynamical environment
- Long-Time Simulation of a Size-Structured Population Model with a Dynamical Resource
This page was built for publication: Stand dynamics and tree coexistence in an analytical structured model: the role of recruitment