By means of numerical simulations and epidemic analysis, the transition point of the stochastic asynchronous susceptible-infected-recovered model on a square lattice is found to be c(0)=0.176 500 5(10), where c is the probability a chosen infected site spontaneously recovers rather than tries to infect one neighbor. This point corresponds to an infection/recovery rate of lambda(c)=(1-c(0))/c(0)=4.665 71(3) and a net transmissibility of (1-c(0))/(1+3c(0))=0.538 410(2), which falls between the rigorous bounds of the site and bond thresholds. The critical behavior of the model is consistent with the two-dimensional percolation universality class, but local growth probabilities differ from those of dynamic percolation cluster growth, as is demo...
In this work, we study the evolution of the susceptible individuals during the spread of an epidemic...
We study a stochastic process describing the onset of spreading dynamics of an epidemic in a populat...
The susceptible-infectious-recovered (SIR) model describes the evolution of three species of individ...
By means of numerical simulations and epidemic analysis, the transition point of the stochastic asyn...
By means of numerical simulations and epidemic analysis, the transition point of the stochastic asyn...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
Two stochastic epidemic lattice models, the susceptible-infected-recovered and the susceptible-expos...
AbstractWe investigate the critical behavior of a stochastic lattice model describing a General Epid...
Abstract: The spatial and temporal dynamics for epidemic diseases have growing interest. A variety o...
AbstractWe investigate the critical behavior of a stochastic lattice model describing a General Epid...
The study compares the epidemic spread on static and dynamic small-world networks. They are construc...
In this work, we study the evolution of the susceptible individuals during the spread of an epidemic...
Inspired by the recent viral epidemic outbreak and its consequent worldwide pandemic, we devise a mo...
In this work, we study the evolution of the susceptible individuals during the spread of an epidemic...
We study a stochastic process describing the onset of spreading dynamics of an epidemic in a populat...
The susceptible-infectious-recovered (SIR) model describes the evolution of three species of individ...
By means of numerical simulations and epidemic analysis, the transition point of the stochastic asyn...
By means of numerical simulations and epidemic analysis, the transition point of the stochastic asyn...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
The critical behavior of the stochastic susceptible-infected-recovered model on a square lattice is ...
Two stochastic epidemic lattice models, the susceptible-infected-recovered and the susceptible-expos...
AbstractWe investigate the critical behavior of a stochastic lattice model describing a General Epid...
Abstract: The spatial and temporal dynamics for epidemic diseases have growing interest. A variety o...
AbstractWe investigate the critical behavior of a stochastic lattice model describing a General Epid...
The study compares the epidemic spread on static and dynamic small-world networks. They are construc...
In this work, we study the evolution of the susceptible individuals during the spread of an epidemic...
Inspired by the recent viral epidemic outbreak and its consequent worldwide pandemic, we devise a mo...
In this work, we study the evolution of the susceptible individuals during the spread of an epidemic...
We study a stochastic process describing the onset of spreading dynamics of an epidemic in a populat...
The susceptible-infectious-recovered (SIR) model describes the evolution of three species of individ...