A Susceptible-Infectious (si) Model With Two Infective Stages and an Endemic Equilibrium

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Date

2022

Authors

Ahmetolan, Semra
Demirci, Ali
Bilge, Ayse Humeyra
Dobie, Ayse Peker

Journal Title

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Volume Title

Publisher

Elsevier

Open Access Color

Green Open Access

No

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Abstract

The focus of this article is on the dynamics of a susceptible-infected model which consists of a susceptible group (S) and two different infectious groups (I-1 and I-2). Once infected, an individual becomes a member of one of these infectious groups which have different clinical forms of infection. In addition, during the progress of the illness, an infected individual in group I-1 may pass to the infectious group I-2 which has a higher mortality rate. The infection is deadly and it has no cure. In this study, positiveness of the solutions for the model is proved. Stability analysis of species extinction, I-1-free equilibrium and endemic equilibrium as well as disease-free equilibrium is studied, and it is shown that the disease-free equilibrium is stable whereas all other equilibrium points are asymptotically stable for parameter ranges determined by certain inequalities. In addition, relations between the basic reproduction number of the disease and the basic reproduction number of each infectious stage are examined. Furthermore, the case where all newborns from infected mothers are also infected is analysed. For this type of vertical transmission, endemic equilibrium is asymptotically stable for certain parameter ranges. Finally, a special case which refers to the disease without vital dynamics is investigated and its exact solution is obtained. (c) 2021 International Association for Mathematics and Computers in Simulation (IMACS). Published by Elsevier B.V. All rights reserved.

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Keywords

Feline, Epidemic models, Endemic equilibrium, Epidemics, Extinction, Reproduction number, Feline, Infectious Diseases, Epidemics, Stability, Feline, Infectious Diseases, Reproduction number, Extinction, Epidemics, Stability, Endemic equilibrium, Epidemic models, Bifurcation theory for ordinary differential equations, Epidemiology, extinction, reproduction number, endemic equilibrium, stability, infectious diseases, Qualitative investigation and simulation of ordinary differential equation models, epidemic models

Fields of Science

0301 basic medicine, 0403 veterinary science, 03 medical and health sciences, 04 agricultural and veterinary sciences

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
10

Source

Mathematics and Computers in Simulation

Volume

194

Issue

Start Page

19

End Page

35
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Citations

CrossRef : 10

Scopus : 9

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Mendeley Readers : 7

SCOPUS™ Citations

11

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Web of Science™ Citations

4

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Page Views

9

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