DocumentCode :
724528
Title :
Novel SIVR epidemic spreading model with virus variation in complex networks
Author :
Degang Xu ; Xiyang Xu ; Zhifang Su
Author_Institution :
Coll. of Inf. Sci. & Eng., Central South Univ., Changsha, China
fYear :
2015
fDate :
23-25 May 2015
Firstpage :
5164
Lastpage :
5169
Abstract :
Recent researches find that there are tight relations between virus variation and epidemic. Creature evolution, ecological environment and medical sources will lead to epidemic variation in the spreading process. Complex networks portray a multitude of interactions through which infectious diseases propagate in a society. In order to study the dynamics of epidemic spreading with virus variation, a new epidemic spreading SIVR model (Susceptible-Infective-Variant-Recovery) is proposed. This model extends the classical Susceptible-Infectious-Recovery (SIR) epidemic spreading model with considering variation affection of two different virus in the process of epidemic spreading. Mean-field equations of SIVR model are derived by describing the dynamics behaviors of the variable virus in complex networks. Then steady-state analysis for this model is conducted to investigate the process of epidemic spreading under different spreading rate, recovery rate, variant rate, and the average degree of networks. Meanwhile, different epidemic immunization strategies are discussed for the immunization threshold in homogeneous networks. Numerical simulations are conducted to illustrate the relationship between the factors of the epidemic spreading. The results play an important role in preventing and controlling the spreading of variable virus.
Keywords :
complex networks; diseases; epidemics; network theory (graphs); SIR; SIVR epidemic spreading model; complex networks; creature evolution; ecological environment; epidemic immunization strategies; infectious diseases; medical sources; recovery rate; spreading process; spreading rate; susceptible-infectious-recovery epidemic spreading model; susceptible-infective-variant-recovery; variable virus; variant rate; virus variation; Biological system modeling; Complex networks; Electronic mail; Immune system; Mathematical model; Numerical models; Steady-state; Epidemic spreading; Immunization strategy; SIVR model; Variant rate; virus variation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control and Decision Conference (CCDC), 2015 27th Chinese
Conference_Location :
Qingdao
Print_ISBN :
978-1-4799-7016-2
Type :
conf
DOI :
10.1109/CCDC.2015.7162845
Filename :
7162845
Link To Document :
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