Open Access
Issue
ITM Web Conf.
Volume 75, 2025
The Second International Conference on Mathematical Analysis and Its Applications (ICONMAA 2024)
Article Number 02006
Number of page(s) 19
Section Differential Equations
DOI https://doi.org/10.1051/itmconf/20257502006
Published online 21 February 2025
  1. J. G. Wolbert, M. Rajnik, H. M. Swinkels, and K. Higginbotham, Poliomyelitis (StatPearls Publishing, Treasure Island (FL), 2025) [Google Scholar]
  2. C. F. Estivariz, R. Link-Gelles, dan T. Shimabukuro, Epidemiology and Prevention of Vaccine-Preventable Diseases-14th Edition (CDC, U.S. Department of Health and Human Services, 2021) [Google Scholar]
  3. V. J. Cirillo, House Flies and the Spread of Polio “ I Am the Baby Killer ! ”. American Entomologist Vol.62, 2, 83–88 (1992). https://doi.org/10.1093/ae/tmw039 [Google Scholar]
  4. J. L. Melnck, and L. R. Penner, The survival of poliomyelitis and Coxsackie viruses following their ingestion by flies. The Journal of experimental medicine Vol. 96, 255–271 (1952). https://doi.org/10.1084/jem.96.3.255 [CrossRef] [Google Scholar]
  5. A. Patel, M. Jenkins, Rhoden M., and A. N. Barnes, Asystematic Review of Zoonotic Enteric Parasites Carried by Flies, Cockroaches, and Dung Beetles. Pathogens Vol. 11, 90, 1–23 (2022). https://doi.org/10.3390/pathogens11010090 [Google Scholar]
  6. N. Shaheen, A. Mohamed, A. Ramadan, and A.J. Nashwan, The poliovirus reemergence: did concentrated efforts against COVID-19 open the door?. Journal of Virus Eradication Vol. 9, 1, 1–2 (2023). https://doi.org/10.1016/j.jve.2023.100321 [CrossRef] [Google Scholar]
  7. M. Agarwal and A.S. Bhadauria, Modeling Spread of Polio with the Role of Vaccination. Applications and Applied Mathematics Vol. 6, 2, 552–571 (2011). http://pvamu.edu/aam [MathSciNet] [Google Scholar]
  8. E. Duque-Marin, J.G. Vergano-Salasar, I. Duarte-Gandica, and K. Vilches, Mathematical Modelling of Some Poliomyelitis Vaccination and Migration Scenarios in Colombia. Journal of Physics Vol. 160, 012021, 1–8 (2019). https://doi.org/10.1088/1742-6596/1160/1/012021 [Google Scholar]
  9. S. Ale, S.A. Akande, O.A. Adedayo, and B. Fadipe, Mathematical Model for the Transmission of Polio-Virus amongst Children with the Role of Vaccination and Treatment in Controlling the Outbreak and Spread of the Disease. Current Trends on Biostatistics and Biometrics Vol. 3, 5, 423–432 (2022). https://doi.org/10.32474/CTBB.2022.03.000172 [Google Scholar]
  10. M. Gamboa and M. Lopez-Herrero, Measures to Assess a Warning Vaccination Level in a Stochastic SIV Model with Imperfect Vaccine. Studies in Applied Mathematics Vol. 148, 1411–1438 (2022). https://doi.org/10.1111/sapm.12479 [CrossRef] [MathSciNet] [Google Scholar]
  11. M. S. Iqbal, N. Ahmed, A. Akgu, A. Satti, Z. Iqbal, A. Raza, M. Rafiq, R. Anjum, M. Zakarya, C. Park, Analysis of The Fractional Polio Model with the Mittag-Leffler Kernels. Alexandria Engineering Journal Vol. 64, 957–967 (2023). https://doi.org/10.1016/j.aej.2022.08.025 [CrossRef] [Google Scholar]
  12. X. Liu, M.U. Rahman, M. Arfan, F. Tchier, Fractional Mathematical Modeling To the Spread of Polio With the Role of Vaccination Under Non-Singular Kernel. Fractals Vol. 30, 5, 1–17 (2022). https://doi.org/10.1142/S0218348X22401442 [Google Scholar]
  13. S. Sharma, and F. Singh, Bifurcation and stability analysis of a cholera model with vaccination and saturated treatment. Chaos Solitons & Fractals Vol. 146, 110912 (2021). https://doi.org/10.1016/j.chaos.2021.110912 [CrossRef] [Google Scholar]
  14. I. O. Musa, O. A. Adedayo, and S. Akande, Mathematical Model on Transmission of the Polio Hospitalization With Vaccination. Global Scientific Journals Vol. 11, 5, 17641784 (2023). https://www.researchgate.net/publication/371006289_MATHEMATICAL_MODEL_ON_TRANSMISSION_OF_THE_POLIO_HOSPITALIZATION_WITH_VACCINATION [Google Scholar]
  15. C. Castillo-Chaves, and B. Song, Dynamical Models of Tuberculosis and Their Applications. Mathematical Biosciences and Engineering Vol. 1, 2, 361–464 (2004). http://math.asu.edu/Ëœmbe/ [CrossRef] [MathSciNet] [Google Scholar]
  16. Badan Pusat Statistik, Hasil Sensus Penduduk 2020. Badan Pusat Statistik (2020). https://www.bps.go.id/id/pressrelease/2021/01/21/1854/hasil-sensus-penduduk-2020.htmls [Google Scholar]
  17. Dinas Kesehatan Provinsi Sulawesi Selatan, Rekapan Cakupan Imunisasi Tahun 2023 Sulawesi Selatan. (Dinas Kesehatan Provinsi Sulawesi Selatan, 2023) [Google Scholar]
  18. F. Sulayman, A. Abdullah, and M. H. Mohd, An SVEIRE Model of Tuberculosis to Assess The Effect of An Imperfect Vaccine and Other Exogenous Factors. Mathematics Vol. 9, 4, 1–23 (2021). https://doi.org/10.3390/math9040327 [Google Scholar]
  19. M. Suma’inna and N. Farhana, Mathematical Model of Cholera Disease Through Individuals Contact, Water Resources, Fly and Fish Vectors. AIP Conference Proceedings Vol. 2498, 1 (2022). https://doi.org/10.1063/5.0082967 [Google Scholar]
  20. K. Sakinah. Simulasi Populasi Lalat Rumah (Musca Domestica) Berdasarkan Data Suhu dan Kelembaban di Jawa Barat (Undergraduate Thesis, Department of Geophysics and Meteorology, Institut Pertanian Bogor, 2016) [Google Scholar]

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