In this study, the infection process in infectious individual is mathematically modeled by using a system of multiple fractional order differential equations. Qualitative analysis of the model was done. To mathematically examine the effect of Pseudomonas Aeruginosa and Mycobacterium tuberculosis and their treatment methods, the results of the proposed model are compared with numerical simulations with the help of datas obtained from the literature
An Ordinary Differential Equation(ODE) co-infection model of Tuberculosis-Lymphatic filariasis is pr...
Resistance of developed bacteria to antibiotic treatment is a very important issue, because introduc...
In this article, we study the fractional mathematical model of HIV-1 infection of CD4+ T-cells, by s...
The model in this study, examined the time-dependent changes in the population sizes of pathogen-imm...
A mathematical model of HIV/AIDS and TB including its co-infections is formulated. We find the Equil...
In this study, the mathematical model examined the dynamics between pathogen and specific immune sys...
In this study, the mathematical model examined the dynamics between pathogen and specific immune sys...
In this paper, we introduce the multi−strain TB model of fractional-order derivatives, which incorpo...
In this paper, a multi-step differential transform method (MsDTM) is performed to give approximate a...
In this paper, we study the dynamics of a viral infection model formulated by five fractional differ...
WOS: 000293829300024In this paper, a multi-step differential transform method (MsDTM) is performed t...
In this paper, the fractional-order model that describes HIV infection of CD4+ T cells with therapy ...
In this article, we develop a numerical technique for solving HIV mathematical model of complex or...
AbstractIn this paper, the fractional-order model that describes HIV infection of CD4+ T cells with ...
Tuberculosis (TB) remains a public health problem in the world, because of the increasing prevalence...
An Ordinary Differential Equation(ODE) co-infection model of Tuberculosis-Lymphatic filariasis is pr...
Resistance of developed bacteria to antibiotic treatment is a very important issue, because introduc...
In this article, we study the fractional mathematical model of HIV-1 infection of CD4+ T-cells, by s...
The model in this study, examined the time-dependent changes in the population sizes of pathogen-imm...
A mathematical model of HIV/AIDS and TB including its co-infections is formulated. We find the Equil...
In this study, the mathematical model examined the dynamics between pathogen and specific immune sys...
In this study, the mathematical model examined the dynamics between pathogen and specific immune sys...
In this paper, we introduce the multi−strain TB model of fractional-order derivatives, which incorpo...
In this paper, a multi-step differential transform method (MsDTM) is performed to give approximate a...
In this paper, we study the dynamics of a viral infection model formulated by five fractional differ...
WOS: 000293829300024In this paper, a multi-step differential transform method (MsDTM) is performed t...
In this paper, the fractional-order model that describes HIV infection of CD4+ T cells with therapy ...
In this article, we develop a numerical technique for solving HIV mathematical model of complex or...
AbstractIn this paper, the fractional-order model that describes HIV infection of CD4+ T cells with ...
Tuberculosis (TB) remains a public health problem in the world, because of the increasing prevalence...
An Ordinary Differential Equation(ODE) co-infection model of Tuberculosis-Lymphatic filariasis is pr...
Resistance of developed bacteria to antibiotic treatment is a very important issue, because introduc...
In this article, we study the fractional mathematical model of HIV-1 infection of CD4+ T-cells, by s...