A second-order finite difference approximation for a mathematical model of erythropoiesis
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Publication:2864593
DOI10.1002/num.21778zbMath1275.92011OpenAlexW2114617902MaRDI QIDQ2864593
Azmy S. Ackleh, Jeremy J. Thibodeaux
Publication date: 26 November 2013
Published in: Numerical Methods for Partial Differential Equations (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1002/num.21778
Medical applications (general) (92C50) Physiology (general) (92C30) Finite difference and finite volume methods for ordinary differential equations (65L12)
Cites Work
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- Mathematical model of hematopoiesis dynamics with growth factor-dependent apoptosis and proliferation regulations
- A quasilinear hierarchical size-structured model: well-posedness and approximation
- A structured erythropoiesis model with nonlinear cell maturation velocity and hormone decay rate
- Parameter estimation in a structured erythropoiesis model
- Numerical integration of a mathematical model of hematopoietic stem cell dynamics
- High resolution schemes for hyperbolic conservation laws
- Efficient implementation of essentially nonoscillatory shock-capturing schemes
- Modeling aggregation and growth processes in an algal population model: Analysis and computations
- Numerical integration of autonomous and non-autonomous non-linear size-structured population models
- Modeling and optimal regulation of erythropoiesis subject to Benzene intoxication
- Numerical integration of fully nonlinear size-structured population models
- Age-structured and two-delay models for erythropoiesis
- Strong Stability-Preserving High-Order Time Discretization Methods
- Total variation diminishing Runge-Kutta schemes
- An implicit finite difference scheme for the nonlinear size-structured population model
- A finite difference approximation for a nonlinear size-structured phytoplankton aggregation model
- An explicit third-order numerical method for size-structured population equations
- A multi-scale model of erythropoiesis
- A fourth‐order method for numerical integration of age‐ and size‐structured population models
- High Resolution Schemes for a Hierarchical Size‐Structured Model
- Long Period Oscillations in aG0Model of Hematopoietic Stem Cells
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