thesis.bib 4.9 KB

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  1. @inbook{Eichner2003,
  2. author = {Eichner, Martin and Kretzschmar, Mirjam},
  3. pages = {81--93},
  4. publisher = {Springer Berlin Heidelberg},
  5. title = {Mathematische Modelle in der Infektionsepidemiologie},
  6. year = {2003},
  7. isbn = {9783642556128},
  8. booktitle = {Infektionsepidemiologie},
  9. doi = {10.1007/978-3-642-55612-8_8}
  10. }
  11. @article{1927,
  12. author = {William Ogilvy Kermack and A. G. McKendrick},
  13. journal = {Proceedings of the Royal Society of London. Series A, Containing Papers of a Mathematical and Physical Character},
  14. title = {A contribution to the mathematical theory of epidemics},
  15. year = {1927},
  16. issn = {2053-9150},
  17. month = aug,
  18. number = {772},
  19. pages = {700--721},
  20. volume = {115},
  21. doi = {10.1098/rspa.1927.0118},
  22. publisher = {The Royal Society}
  23. }
  24. @article{Foerster2024,
  25. author = {Foerster, Dietrich and Bhatkar, Sayali and Bhanot, Gyan},
  26. title = {Parametrization of Worldwide Covid-19 data for multiple variants: How is the SAR-Cov2 virus evolving?},
  27. year = {2024},
  28. month = apr,
  29. doi = {10.1101/2024.04.09.24305557},
  30. publisher = {Cold Spring Harbor Laboratory}
  31. }
  32. @misc{Shaier2021,
  33. author = {Shaier, Sagi and Raissi, Maziar and Seshaiyer, Padmanabhan},
  34. title = {Data-driven approaches for predicting spread of infectious diseases through DINNs: Disease Informed Neural Networks},
  35. year = {2021},
  36. copyright = {Creative Commons Attribution 4.0 International},
  37. doi = {10.48550/ARXIV.2110.05445},
  38. keywords = {Machine Learning (cs.LG), Quantitative Methods (q-bio.QM), FOS: Computer and information sciences, FOS: Computer and information sciences, FOS: Biological sciences, FOS: Biological sciences},
  39. publisher = {arXiv}
  40. }
  41. @article{Jayatilaka2022,
  42. author = {Jayatilaka, R. and Patel, R. and Brar, M. and Tang, Y. and Jisrawi, N.M. and Chishtie, F. and Drozd, J. and Valluri, S.R.},
  43. journal = {Materials Today: Proceedings},
  44. title = {A mathematical model of COVID-19 transmission},
  45. year = {2022},
  46. issn = {2214-7853},
  47. pages = {101--112},
  48. volume = {54},
  49. doi = {10.1016/j.matpr.2021.11.480},
  50. publisher = {Elsevier BV}
  51. }
  52. @book{Zill1997,
  53. author = {Dennis G. Zill},
  54. editor = {Gary Ostedt},
  55. publisher = {Brooks/Cole Publishing Company, a division of Internaltional Thomson Publishing Inc.},
  56. title = {A First Course In Differential Equations With Modelling Applications},
  57. year = {1997},
  58. edition = {6}
  59. }
  60. @book{Rudin2007,
  61. author = {Walter Rudin},
  62. publisher = {Oldenbourg Wissenschaftsverlag GmbH},
  63. title = {Analysis},
  64. year = {2007}
  65. }
  66. @book{Tenenbaum1985,
  67. author = {Morris Tenenbaum and Harry Pollard},
  68. publisher = {Harper and Row, Publishers, Inc.},
  69. title = {Ordinary Differential Equations},
  70. year = {1985}
  71. }
  72. @Book{EdelsteinKeshet2005,
  73. author = {Leah Edelstein-Keshet},
  74. publisher = {Society for Industrial and Applied Mathematics},
  75. title = {Mathematical Models in Biology},
  76. year = {2005},
  77. }
  78. @Book{Anderson1991,
  79. author = {Anderson, Roy Malcolm; May, Robert M.},
  80. publisher = {Oxford University Press},
  81. title = {Infectious diseases of humans : dynamics and control},
  82. year = {1991},
  83. }
  84. @Article{Millevoi2023,
  85. author = {Millevoi, Caterina and Pasetto, Damiano and Ferronato, Massimiliano},
  86. title = {A Physics-Informed Neural Network approach for compartmental epidemiological models},
  87. year = {2023},
  88. copyright = {Creative Commons Attribution Non Commercial No Derivatives 4.0 International},
  89. doi = {10.48550/ARXIV.2311.09944},
  90. keywords = {Numerical Analysis (math.NA), FOS: Mathematics, FOS: Mathematics},
  91. }
  92. @Book{Goodfellow-et-al-2016,
  93. author = {Ian Goodfellow and Yoshua Bengio and Aaron Courville},
  94. publisher = {MIT Press},
  95. title = {Deep Learning},
  96. year = {2016},
  97. note = {\url{http://www.deeplearningbook.org}},
  98. }
  99. @Article{Lagaris1997,
  100. author = {Lagaris, I. E. and Likas, A. and Fotiadis, D. I.},
  101. title = {Artificial Neural Networks for Solving Ordinary and Partial Differential Equations},
  102. year = {1997},
  103. copyright = {Assumed arXiv.org perpetual, non-exclusive license to distribute this article for submissions made before January 2004},
  104. doi = {10.48550/ARXIV.PHYSICS/9705023},
  105. keywords = {Computational Physics (physics.comp-ph), Cellular Automata and Lattice Gases (nlin.CG), Quantum Physics (quant-ph), FOS: Physical sciences, FOS: Physical sciences},
  106. }
  107. @Article{Hornik1989,
  108. author = {Hornik, Kurt and Stinchcombe, Maxwell and White, Halbert},
  109. journal = {Neural Networks},
  110. title = {Multilayer feedforward networks are universal approximators},
  111. year = {1989},
  112. issn = {0893-6080},
  113. month = jan,
  114. number = {5},
  115. pages = {359--366},
  116. volume = {2},
  117. doi = {10.1016/0893-6080(89)90020-8},
  118. publisher = {Elsevier BV},
  119. }
  120. @Comment{jabref-meta: databaseType:bibtex;}