Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective
A bacterial disease called leptospirosis is very typical in both tropical and subtropical regions. It is a well-known animal-borne illness that is brought on by spiral-shaped bacteria (Leptospira spp.). Both directly and indirectly, the disease can spread to humans through the urine of sick animals...
Published in: | European Journal of Pure and Applied Mathematics |
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New York Business Global
2024
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2-s2.0-85201077715 Artiono R.; Prawoto B.P.; Savitri D.; Maulana D.A.; Hamdan N.I.; Latif N.S.A.; Hadi N.A. Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective 2024 European Journal of Pure and Applied Mathematics 17 3 10.29020/nybg.ejpam.v17i3.5178 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201077715&doi=10.29020%2fnybg.ejpam.v17i3.5178&partnerID=40&md5=53133c40dd7626f16357f5d84dd2c3cd A bacterial disease called leptospirosis is very typical in both tropical and subtropical regions. It is a well-known animal-borne illness that is brought on by spiral-shaped bacteria (Leptospira spp.). Both directly and indirectly, the disease can spread to humans through the urine of sick animals or polluted water, soil, or food. Two phases might appear in leptospirosis symptoms. The patient will have mild symptoms during the first phase, which is known as the Septicemic phase. In the meantime, the Immune phase, the second, is more severe. This study aimed to create a mathematical model of leptospirosis disease using free-living bacteria. In the model, interactions occur between people, free-living Leptospira, animal hosts, and animal vectors. The population's characteristics are used to build the model, and the actual issue is used to identify the disease's transmission paths. While the endemic equilibrium is investigated numerically through ODE45 solver, the disease-free equilibrium is analyzed theoretically. The paper demonstrates that for the established mathematical model with an epidemic threshold R0, analytical and numerical solutions produced the same outcome. © 2024 EJPAM. New York Business Global 13075543 English Article All Open Access; Gold Open Access |
author |
Artiono R.; Prawoto B.P.; Savitri D.; Maulana D.A.; Hamdan N.I.; Latif N.S.A.; Hadi N.A. |
spellingShingle |
Artiono R.; Prawoto B.P.; Savitri D.; Maulana D.A.; Hamdan N.I.; Latif N.S.A.; Hadi N.A. Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
author_facet |
Artiono R.; Prawoto B.P.; Savitri D.; Maulana D.A.; Hamdan N.I.; Latif N.S.A.; Hadi N.A. |
author_sort |
Artiono R.; Prawoto B.P.; Savitri D.; Maulana D.A.; Hamdan N.I.; Latif N.S.A.; Hadi N.A. |
title |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
title_short |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
title_full |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
title_fullStr |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
title_full_unstemmed |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
title_sort |
Mathematical Analysis and Numerical Simulation on Free-Living Leptospira: A Mathematical Modeling Perspective |
publishDate |
2024 |
container_title |
European Journal of Pure and Applied Mathematics |
container_volume |
17 |
container_issue |
3 |
doi_str_mv |
10.29020/nybg.ejpam.v17i3.5178 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201077715&doi=10.29020%2fnybg.ejpam.v17i3.5178&partnerID=40&md5=53133c40dd7626f16357f5d84dd2c3cd |
description |
A bacterial disease called leptospirosis is very typical in both tropical and subtropical regions. It is a well-known animal-borne illness that is brought on by spiral-shaped bacteria (Leptospira spp.). Both directly and indirectly, the disease can spread to humans through the urine of sick animals or polluted water, soil, or food. Two phases might appear in leptospirosis symptoms. The patient will have mild symptoms during the first phase, which is known as the Septicemic phase. In the meantime, the Immune phase, the second, is more severe. This study aimed to create a mathematical model of leptospirosis disease using free-living bacteria. In the model, interactions occur between people, free-living Leptospira, animal hosts, and animal vectors. The population's characteristics are used to build the model, and the actual issue is used to identify the disease's transmission paths. While the endemic equilibrium is investigated numerically through ODE45 solver, the disease-free equilibrium is analyzed theoretically. The paper demonstrates that for the established mathematical model with an epidemic threshold R0, analytical and numerical solutions produced the same outcome. © 2024 EJPAM. |
publisher |
New York Business Global |
issn |
13075543 |
language |
English |
format |
Article |
accesstype |
All Open Access; Gold Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1812871794876481536 |