The problem of targeted network immunization can be defined as the one of finding a subset of nodes in a network to immunize or vaccinate in order to minimize a tradeoff between the cost of vaccination and the final (stationary) expected infection under a given epidemic model. Although computing the expected infection is a hard computational problem, simple and efficient mean-field approximations have been put forward in the literature in recent years. The optimization problem can be recast into a constrained one in which the constraints enforce local mean-field equations describing the average stationary state of the epidemic process. For a wide class of epidemic models, including the susceptible-infected-removed and the susceptible-infect...
Background: Network-based interventions against epidemic spread are most powerful when the full netw...
Immunization of complex network with minimal or limited budget is a challenging issue for research c...
: We compared seven node vaccination strategies in twelve real-world complex networks. The node vacc...
The problem of targeted network immunization can be defined as the one of finding a subset of nodes ...
Recently, there has been significant research activity in the algorithmic analysis of complex networ...
The topic of finding effective strategies to restrain epidemic spreading in complex networks is of c...
Epidemics occur in all shapes and forms: infections propagating in our sparse sexual networks, rumou...
Given a graph, like a social/computer network or the blogosphere, in which an infection (or meme or ...
In this paper, a new susceptible-infected-susceptible (SIS) model on complex networks with imperfect...
In this paper we quantify the total cost of an epidemic spreading through a social network, accounti...
We study, control of infectious disease epidemics spreading on random networks with different levels...
Given a network of nodes, minimizing the spread of a contagion using a limited budget is a well-stud...
We investigate methods to vaccinate contact networks – i.e. removing nodes in such a way that diseas...
The immunization strategies through contact tracing on the susceptible-infected-recovered framework ...
We study, control of infectious disease epidemics spreading on random networks with different levels...
Background: Network-based interventions against epidemic spread are most powerful when the full netw...
Immunization of complex network with minimal or limited budget is a challenging issue for research c...
: We compared seven node vaccination strategies in twelve real-world complex networks. The node vacc...
The problem of targeted network immunization can be defined as the one of finding a subset of nodes ...
Recently, there has been significant research activity in the algorithmic analysis of complex networ...
The topic of finding effective strategies to restrain epidemic spreading in complex networks is of c...
Epidemics occur in all shapes and forms: infections propagating in our sparse sexual networks, rumou...
Given a graph, like a social/computer network or the blogosphere, in which an infection (or meme or ...
In this paper, a new susceptible-infected-susceptible (SIS) model on complex networks with imperfect...
In this paper we quantify the total cost of an epidemic spreading through a social network, accounti...
We study, control of infectious disease epidemics spreading on random networks with different levels...
Given a network of nodes, minimizing the spread of a contagion using a limited budget is a well-stud...
We investigate methods to vaccinate contact networks – i.e. removing nodes in such a way that diseas...
The immunization strategies through contact tracing on the susceptible-infected-recovered framework ...
We study, control of infectious disease epidemics spreading on random networks with different levels...
Background: Network-based interventions against epidemic spread are most powerful when the full netw...
Immunization of complex network with minimal or limited budget is a challenging issue for research c...
: We compared seven node vaccination strategies in twelve real-world complex networks. The node vacc...