MODELLING EPIDEMICS AND VIRUS MUTATIONS BY METHODS OF THE MATHEMATICAL KINETIC THEORY FOR ACTIVE PARTICLES

From MaRDI portal
Publication:3638793

DOI10.1142/S0218202509003838zbMath1175.92035OpenAlexW2044220055MaRDI QIDQ3638793

Marcello Delitala, Maria Cesarina Salvatori, Silvana De Lillo

Publication date: 28 October 2009

Published in: Mathematical Models and Methods in Applied Sciences (Search for Journal in Brave)

Full work available at URL: https://doi.org/10.1142/s0218202509003838



Related Items

The role of the principle of inertia in KTAP models, On the mathematical theory of post-Darwinian mutations, selection, and evolution, Modelling aggregation-fragmentation phenomena from kinetic to macroscopic scales, A kinetic model for horizontal transfer and bacterial antibiotic resistance, From kinetic models of multicellular growing systems to macroscopic biological tissue models, On the initial value problem of a class of models of the kinetic theory for active particles, On the mathematical theory of living systems. I: Complexity analysis and representation, Mathematical modeling of quality in a medical structure: A case study, On the mathematical theory of living systems. II: The interplay between mathematics and system biology, On a class of integro-differential equations modeling complex systems with nonlinear interactions, On the modelling of genetic mutations and immune system competition, On an initial value problem modeling evolution and selection in living systems, Chemotaxis systems in complex frameworks: Pattern formation, qualitative analysis and blowup prevention, A multiscale model of virus pandemic: Heterogeneous interactive entities in a globally connected world, On the modeling of collective learning dynamics, An artificial neural network approach for modeling the Ward atmosphere in a medical unit, MATHEMATICS AND COMPLEXITY IN BIOLOGICAL SCIENCES, FROM METHODS OF THE MATHEMATICAL KINETIC THEORY FOR ACTIVE PARTICLES TO MODELING VIRUS MUTATIONS, ON THE MODELING OF MIGRATION PHENOMENA ON SMALL NETWORKS, Final size and convergence rate for an epidemic in heterogeneous populations, FROM THE MODELING OF THE IMMUNE HALLMARKS OF CANCER TO A BLACK SWAN IN BIOLOGY, Modeling the hiding-learning dynamics in large living systems, Complexity and mathematical tools toward the modelling of multicellular growing systems, On the interaction between soft and hard sciences: the role of mathematical sciences. Looking ahead to research perspectives, On the modeling of nonlinear interactions in large complex systems, MATHEMATICS AND COMPLEXITY IN LIFE AND HUMAN SCIENCES, A multiscale view of nonlinear diffusion in biology: From cells to tissues, MATHEMATICS AND COMPLEXITY IN LIFE AND HUMAN SCIENCES, Multiscale models of COVID-19 with mutations and variants, ``Follow the leader learning dynamics on networks, What is life? A perspective of the mathematical kinetic theory of active particles, A multiscale network-based model of contagion dynamics: Heterogeneity, spatial distancing and vaccination, From a systems theory of sociology to modeling the onset and evolution of criminality



Cites Work