A HIV virus-to-cell dynamical model with distributed delay and Beddington-DeAngelis functional response is proposed in this paper. Using the characteristic equations and analytical means, the principle reproduction number R0 on the local stability of infection-free and chronic-infection equilibria is established. Furthermore, by constructing suitable Lyapunov functionals and using LaSalle invariance principle, we show that if R0 ≤ 1 the infection-free equilibrium is globally asymptotically stable, while if R0 > 1 the chronic-infection equilibrium is globally asymptotically stable. Numerical simulations are presented to illustrate the theoretical results. Comparing the effects between discrete and distributed delays on the stability of HI...
In this paper, we study the global dynamics of a viral infection model with a latent period. The mod...
In this paper, a delayed viral dynamical model that considers two different transmission methods of ...
In this paper, we discussed a infinitely distributed delayed viral infection model with nonlinear im...
AbstractIn this paper, an HIV-1 infection model with distributed intracellular delays is investigate...
A class of virus dynamics model with intracellular delay and nonlinear infection rate of Beddington-...
A class of virus dynamics model with intracellular delay and nonlinear infection rate of Beddington-...
Abstract A class of virus dynamics model with intracellular delay and nonlinear infection rate of Be...
AbstractIn this paper, an HIV-1 infection model with a saturation infection rate and an intracellula...
In this paper, the global stability of a delayed HIV model with saturated infection rate infection i...
In this paper, the global stability of a delayed HIV model with saturated infection rate infection i...
Abstract This paper investigates the global stability of virus dynamics model with Beddington-DeAnge...
AbstractIn this paper, we investigate global dynamics for a system of delay differential equations w...
In this paper, we investigate global dynamics for a system of delay differential equations which des...
Abstract The dynamics of a general in-host model with intracellular delay is studied. The model can ...
Abstract We investigate general HIV infection models with three types of infected cells: latently in...
In this paper, we study the global dynamics of a viral infection model with a latent period. The mod...
In this paper, a delayed viral dynamical model that considers two different transmission methods of ...
In this paper, we discussed a infinitely distributed delayed viral infection model with nonlinear im...
AbstractIn this paper, an HIV-1 infection model with distributed intracellular delays is investigate...
A class of virus dynamics model with intracellular delay and nonlinear infection rate of Beddington-...
A class of virus dynamics model with intracellular delay and nonlinear infection rate of Beddington-...
Abstract A class of virus dynamics model with intracellular delay and nonlinear infection rate of Be...
AbstractIn this paper, an HIV-1 infection model with a saturation infection rate and an intracellula...
In this paper, the global stability of a delayed HIV model with saturated infection rate infection i...
In this paper, the global stability of a delayed HIV model with saturated infection rate infection i...
Abstract This paper investigates the global stability of virus dynamics model with Beddington-DeAnge...
AbstractIn this paper, we investigate global dynamics for a system of delay differential equations w...
In this paper, we investigate global dynamics for a system of delay differential equations which des...
Abstract The dynamics of a general in-host model with intracellular delay is studied. The model can ...
Abstract We investigate general HIV infection models with three types of infected cells: latently in...
In this paper, we study the global dynamics of a viral infection model with a latent period. The mod...
In this paper, a delayed viral dynamical model that considers two different transmission methods of ...
In this paper, we discussed a infinitely distributed delayed viral infection model with nonlinear im...