Pattern transitions in spatial epidemics: Mechanisms and emergent properties
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Zhen Jin | Gui-Quan Sun | Yi Wang | Marko Jusup | Zhen Jin | Gui‐Quan Sun | M. Jusup | Zhen Wang | Yi Wang | Zhen Wang
[1] Zhen Jin,et al. SPATIAL PATTERN IN AN EPIDEMIC SYSTEM WITH CROSS-DIFFUSION OF THE SUSCEPTIBLE , 2009 .
[2] G. Abramson,et al. Theory of hantavirus infection spread incorporating localized adult and itinerant juvenile mice , 2005, q-bio/0511024.
[3] Sebastian Bonhoeffer,et al. Dose–dependent infection rates of parasites produce the Allee effect in epidemiology , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[4] C. Kribs-Zaleta,et al. Invasion Speed in Cellular Automaton Models for T. cruzi Vector Migration , 2013, Bulletin of mathematical biology.
[5] Maarten Chris Boerlijst,et al. Spatial Pattern Switching Enables Cyclic Evolution in Spatial Epidemics , 2010, PLoS Comput. Biol..
[6] M. Keeling,et al. Modeling Infectious Diseases in Humans and Animals , 2007 .
[7] Nicola Perra,et al. The Scaling of Human Contacts and Epidemic Processes in Metapopulation Networks , 2015, Scientific Reports.
[8] B. Peña,et al. Stability of Turing patterns in the Brusselator model. , 2001, Physical review. E, Statistical, nonlinear, and soft matter physics.
[9] Hal L. Smith,et al. Abstract functional-differential equations and reaction-diffusion systems , 1990 .
[10] Y. Takeuchi,et al. Immune impairment in HIV infection: existence of risky and immunodeficiency thresholds. , 2009, Journal of theoretical biology.
[11] Zi-Ke Zhang,et al. Global stability for a sheep brucellosis model with immigration , 2014, Appl. Math. Comput..
[12] Jun Tanimoto,et al. Influence of breaking the symmetry between disease transmission and information propagation networks on stepwise decisions concerning vaccination , 2015 .
[13] Sergio Gómez,et al. Competing spreading processes on multiplex networks: awareness and epidemics , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[14] Min Su,et al. Effects of the transmissibility and virulence of pathogens on intraguild predation in fragmented landscapes , 2015, Biosyst..
[15] C. Bauch. Imitation dynamics predict vaccinating behaviour , 2005, Proceedings of the Royal Society B: Biological Sciences.
[16] M. Salathé,et al. The effect of opinion clustering on disease outbreaks , 2008, Journal of The Royal Society Interface.
[17] Aravind Srinivasan,et al. Modelling disease outbreaks in realistic urban social networks , 2004, Nature.
[18] J. Dushoff,et al. Dynamical resonance can account for seasonality of influenza epidemics. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[19] T. Lenton. Early warning of climate tipping points , 2011 .
[20] Frank Diederich,et al. Mathematical Epidemiology Of Infectious Diseases Model Building Analysis And Interpretation , 2016 .
[21] Thilo Gross,et al. Adaptive coevolutionary networks: a review , 2007, Journal of The Royal Society Interface.
[22] Marcel Salathé,et al. Assessing Vaccination Sentiments with Online Social Media: Implications for Infectious Disease Dynamics and Control , 2011, PLoS Comput. Biol..
[23] Sergey N. Dorogovtsev,et al. Localization and Spreading of Diseases in Complex Networks , 2012, Physical review letters.
[24] Andrew J Black,et al. Stochastic amplification in an epidemic model with seasonal forcing. , 2010, Journal of theoretical biology.
[25] Juan Zhang,et al. Transmission dynamics of a multi-group brucellosis model with mixed cross infection in public farm , 2014, Appl. Math. Comput..
[26] Frank Wilczek,et al. Nonlinear Physics of Ecosystems , 2015 .
[27] A. J. Hall. Infectious diseases of humans: R. M. Anderson & R. M. May. Oxford etc.: Oxford University Press, 1991. viii + 757 pp. Price £50. ISBN 0-19-854599-1 , 1992 .
[28] M. M. Telo da Gama,et al. Stochastic fluctuations in epidemics on networks , 2007, Journal of The Royal Society Interface.
[29] C. Gilligan,et al. Heterogeneity in susceptible–infected–removed (SIR) epidemics on lattices , 2011, Journal of The Royal Society Interface.
[30] Alessandro Vespignani,et al. Reaction–diffusion processes and metapopulation models in heterogeneous networks , 2007, cond-mat/0703129.
[31] Zhen Jin,et al. EMERGENT TURING PATTERN IN EPIDEMIC SPREADING USING CELLULAR AUTOMATON , 2011 .
[32] C. Klausmeier,et al. Regular and irregular patterns in semiarid vegetation , 1999, Science.
[33] Alessandro Vespignani,et al. Multiscale mobility networks and the spatial spreading of infectious diseases , 2009, Proceedings of the National Academy of Sciences.
[34] M A Fuentes,et al. Nonlocal interaction effects on pattern formation in population dynamics. , 2003, Physical review letters.
[35] Vittoria Colizza,et al. Heterogeneous length of stay of hosts’ movements and spatial epidemic spread , 2012, Scientific Reports.
[36] G. Chapman,et al. The influence of altruism on influenza vaccination decisions , 2012, Journal of The Royal Society Interface.
[37] W. Baxter,et al. Stationary and drifting spiral waves of excitation in isolated cardiac muscle , 1992, Nature.
[38] S. Riley,et al. Effects of influenza antivirals on individual and population immunity over many epidemic waves , 2012, Epidemiology and Infection.
[39] Shilpa Chakravartula,et al. Complex Networks: Structure and Dynamics , 2014 .
[40] Giancarlo Consolo,et al. Spread of infectious diseases in a hyperbolic reaction-diffusion susceptible-infected-removed model. , 2013, Physical review. E, Statistical, nonlinear, and soft matter physics.
[41] Alfred Ramani,et al. Epidemic dynamics: discrete-time and cellular automaton models , 2003 .
[42] Swinney,et al. Pattern formation in the presence of symmetries. , 1994, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[43] N. Rashevsky,et al. Mathematical biology , 1961, Connecticut medicine.
[44] Ana Perisic,et al. Social Contact Networks and Disease Eradicability under Voluntary Vaccination , 2009, PLoS Comput. Biol..
[45] W. Edmunds,et al. Epidemiological patterns of hepatitis B virus (HBV) in highly endemic areasr , 1996, Epidemiology and Infection.
[46] Y. Iwasa,et al. Influence of nonlinear incidence rates upon the behavior of SIRS epidemiological models , 1986, Journal of mathematical biology.
[47] Jonathan Dushoff,et al. Ecology and evolution of the flu , 2002 .
[48] Matt J Keeling,et al. Modeling dynamic and network heterogeneities in the spread of sexually transmitted diseases , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[49] Xiang Li,et al. Towards a temporal network analysis of interactive WiFi users , 2012, ArXiv.
[50] Alessandro Vespignani,et al. The role of the airline transportation network in the prediction and predictability of global epidemics , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[51] Thilo Gross,et al. Epidemic dynamics on an adaptive network. , 2005, Physical review letters.
[52] Cidália Costa Fonte,et al. Introduction to Geographical Information Systems , 2007 .
[53] V. M. Kenkre,et al. Spatiotemporal patterns in the Hantavirus infection. , 2002, Physical review. E, Statistical, nonlinear, and soft matter physics.
[54] D. Earn,et al. Opposite patterns of synchrony in sympatric disease metapopulations. , 1999, Science.
[55] M. Cross,et al. Pattern formation outside of equilibrium , 1993 .
[56] W. O. Kermack,et al. A contribution to the mathematical theory of epidemics , 1927 .
[57] Gui-Quan Sun,et al. Spatial dynamics of a vegetation model in an arid flat environment , 2013 .
[58] Zhisheng Shuai,et al. GLOBAL STABILITY OF AN EPIDEMIC MODEL IN A PATCHY ENVIRONMENT , 2022 .
[59] Kate E. Jones,et al. Global trends in emerging infectious diseases , 2008, Nature.
[60] Xiang Li,et al. Identifying Spatial Invasion of Pandemics on Metapopulation Networks Via Anatomizing Arrival History , 2015, IEEE Transactions on Cybernetics.
[61] A. Sasaki,et al. The evolution of parasite virulence and transmission rate in a spatially structured population. , 2000, Journal of theoretical biology.
[62] V. M. Kenkre,et al. Applicability of the Fisher equation to bacterial population dynamics. , 2002, Physical review. E, Statistical, nonlinear, and soft matter physics.
[63] F. Schoenberg,et al. Approximating the Distribution of Pareto Sums , 2003 .
[64] N M Ferguson,et al. Spatial heterogeneity and the persistence of infectious diseases. , 2004, Journal of theoretical biology.
[65] M G Clerc,et al. Patterns and localized structures in population dynamics. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[66] Zhen Jin,et al. Spatial organization and evolution period of the epidemic model using cellular automata. , 2006, Physical review. E, Statistical, nonlinear, and soft matter physics.
[67] Lin Wang,et al. Evolutionary games on multilayer networks: a colloquium , 2015, The European Physical Journal B.
[68] Sven Van Segbroeck,et al. Adaptive Contact Networks Change Effective Disease Infectiousness and Dynamics , 2010, PLoS Comput. Biol..
[69] Marcelo N. Kuperman,et al. Cellular automata and epidemiological models with spatial dependence , 1999 .
[70] Alberto d'Onofrio,et al. Vaccine demand driven by vaccine side effects: dynamic implications for SIR diseases. , 2010, Journal of theoretical biology.
[71] L. Danon,et al. Contingency planning for a deliberate release of smallpox in Great Britain - the role of geographical scale and contact structure , 2010, BMC infectious diseases.
[72] D. Gubler. Epidemic dengue/dengue hemorrhagic fever as a public health, social and economic problem in the 21st century. , 2002, Trends in microbiology.
[73] Lin Wang,et al. Coupled disease–behavior dynamics on complex networks: A review , 2015, Physics of Life Reviews.
[74] M. Boerlijst,et al. Selection at the level of the community: the importance of spatial structure , 2002 .
[75] R. Parmenter,et al. Statistical sensitivity for detection of spatial and temporal patterns in rodent population densities. , 1999, Emerging infectious diseases.
[76] Wenzhang Huang,et al. Travelling waves for delayed reaction–diffusion equations with global response , 2005, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[77] Alessandro Vespignani,et al. Modeling human mobility responses to the large-scale spreading of infectious diseases , 2011, Scientific reports.
[78] R. Blendon,et al. The public's response to the 2009 H1N1 influenza pandemic. , 2010, The New England journal of medicine.
[79] V. Isham,et al. Five challenges for spatial epidemic models , 2015, Epidemics.
[80] Alessandro Vespignani,et al. Epidemic spreading in scale-free networks. , 2000, Physical review letters.
[81] M. Baalen,et al. Self-structuring in spatial evolutionary ecology. , 2008, Ecology letters.
[82] P. Manfredi,et al. Modeling the interplay between human behavior and the spread of infectious diseases , 2013 .
[83] Daniel I. S. Rosenbloom,et al. Imitation dynamics of vaccination behaviour on social networks , 2011, Proceedings of the Royal Society B: Biological Sciences.
[84] Vasudev M. Kenkre,et al. Analytical Considerations in the Study of Spatial Patterns Arising from Nonlocal Interaction Effects , 2004 .
[85] Cláudia T. Codeço,et al. Dynamic Modeling of Vaccinating Behavior as a Function of Individual Beliefs , 2008, PLoS Comput. Biol..
[86] S. Levin,et al. Dynamical behavior of epidemiological models with nonlinear incidence rates , 1987, Journal of mathematical biology.
[87] Zhen Jin,et al. Influence of isolation degree of spatial patterns on persistence of populations , 2016 .
[88] M. Keeling,et al. The Interplay between Determinism and Stochasticity in Childhood Diseases , 2002, The American Naturalist.
[89] Luiz Henrique Alves Monteiro,et al. A vaccination game based on public health actions and personal decisions , 2011 .
[90] Shigeru Kondo,et al. Reaction-Diffusion Model as a Framework for Understanding Biological Pattern Formation , 2010, Science.
[91] M. Small,et al. Hub nodes inhibit the outbreak of epidemic under voluntary vaccination , 2010 .
[92] A. F. Pacheco,et al. Epidemic incidence in correlated complex networks. , 2003, Physical review. E, Statistical, nonlinear, and soft matter physics.
[93] Andreas Deutsch,et al. Cellular Automaton Modeling of Biological Pattern Formation - Characterization, Applications, and Analysis , 2005, Modeling and simulation in science, engineering and technology.
[94] J. Botella de Maglia,et al. [Prevention of malaria]. , 1999, Revista clinica espanola.
[95] Pejman Rohani,et al. Seasonnally forced disease dynamics explored as switching between attractors , 2001 .
[96] Alun L Lloyd,et al. Spatiotemporal dynamics of epidemics: synchrony in metapopulation models. , 2004, Mathematical biosciences.
[97] S. Riley,et al. Smallpox transmission and control: Spatial dynamics in Great Britain , 2006, Proceedings of the National Academy of Sciences.
[98] Alvin Shrier,et al. Predicting the onset of period-doubling bifurcations in noisy cardiac systems , 2015, Proceedings of the National Academy of Sciences.
[99] T. Geisel,et al. Natural human mobility patterns and spatial spread of infectious diseases , 2011, 1103.6224.
[100] Li Li,et al. Pattern dynamics of a spatial predator–prey model with noise , 2012 .
[101] P. Rohani,et al. Noise, nonlinearity and seasonality: the epidemics of whooping cough revisited , 2008, Journal of The Royal Society Interface.
[102] S. Carpenter,et al. Early-warning signals for critical transitions , 2009, Nature.
[103] B Grenfell,et al. Stochastic dynamics and a power law for measles variability. , 1999, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[104] Li Li,et al. Patch invasion in a spatial epidemic model , 2015, Appl. Math. Comput..
[105] Yong Deng,et al. Immunization strategy based on the critical node in percolation transition , 2015, Physics Letters A.
[106] Junjie Wei,et al. Periodicity and synchronization in blood-stage malaria infection , 2011, Journal of mathematical biology.
[107] B. Böttiger,et al. Characterization of two decades of temporal co-circulation of four mumps virus genotypes in Denmark: identification of a new genotype. , 2001, The Journal of general virology.
[108] Federico Morán,et al. Noise-controlled self-replicating patterns. , 2003, Physical review letters.
[109] S. Merler,et al. The role of population heterogeneity and human mobility in the spread of pandemic influenza , 2010, Proceedings of the Royal Society B: Biological Sciences.
[110] Zhi-Xi Wu,et al. Peer pressure is a double-edged sword in vaccination dynamics , 2013 .
[111] Alessandro Vespignani,et al. influenza A(H1N1): a Monte Carlo likelihood analysis based on , 2009 .
[112] Deborah Lacitignola,et al. Global stability of an SIR epidemic model with information dependent vaccination. , 2008, Mathematical biosciences.
[113] C. Watkins,et al. The spread of awareness and its impact on epidemic outbreaks , 2009, Proceedings of the National Academy of Sciences.
[114] Yamir Moreno,et al. Effects of delayed recovery and nonuniform transmission on the spreading of diseases in complex networks , 2012, Physica A: Statistical Mechanics and its Applications.
[115] V. Chizhikov,et al. Sequence diversity of Jeryl Lynn strain of mumps virus: quantitative mutant analysis for vaccine quality control. , 2002, Virology.
[116] Michael F. Goodchild,et al. Modeling the Uncertainty of Slope and Aspect Estimates Derived from Spatial Databases , 2010 .
[117] S. Merler,et al. The Effect of Risk Perception on the 2009 H1N1 Pandemic Influenza Dynamics , 2011, PloS one.
[118] R. Fisher. THE WAVE OF ADVANCE OF ADVANTAGEOUS GENES , 1937 .
[119] Henk J. Scholten,et al. An Introduction to Geographical Information Systems , 1995 .
[120] Y. Takeuchi,et al. Immune impairment thresholds in HIV infection. , 2009, Immunology letters.
[121] Gabriele Neumann,et al. Emergence and pandemic potential of swine-origin H1N1 influenza virus , 2009, Nature.
[122] Gui-Quan Sun,et al. Pattern formation of an epidemic model with diffusion , 2012, Nonlinear Dynamics.
[123] Piero Poletti,et al. The impact of vaccine side effects on the natural history of immunization programmes: an imitation-game approach. , 2011, Journal of theoretical biology.
[124] M. Rietkerk,et al. Spatial vegetation patterns and imminent desertification in Mediterranean arid ecosystems , 2007, Nature.
[125] P. E. Kopp,et al. Superspreading and the effect of individual variation on disease emergence , 2005, Nature.
[126] Zhen Jin,et al. Pattern Dynamics in a Spatial Predator-Prey System with Allee Effect , 2013 .
[127] J. Kurths,et al. Coherence Resonance in a Noise-Driven Excitable System , 1997 .
[128] R. Ostfeld,et al. Spatial epidemiology: an emerging (or re-emerging) discipline. , 2005, Trends in ecology & evolution.
[129] Bing-Hong Wang,et al. Braess's Paradox in Epidemic Game: Better Condition Results in Less Payoff , 2013, Scientific Reports.
[130] M. Keeling,et al. Disease evolution on networks: the role of contact structure , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[131] Fabrice Carrat,et al. Explaining rapid reinfections in multiple-wave influenza outbreaks: Tristan da Cunha 1971 epidemic as a case study , 2011, Proceedings of the Royal Society B: Biological Sciences.
[132] H. Abbey. An examination of the Reed-Frost theory of epidemics. , 1952, Human biology.
[133] Christian Möllmann,et al. Marine ecosystem regime shifts: challenges and opportunities for ecosystem-based management , 2015, Philosophical Transactions of the Royal Society B: Biological Sciences.
[134] B. T. Grenfell,et al. Disease Extinction and Community Size: Modeling the Persistence of Measles , 1997, Science.
[135] Jingzhou Liu,et al. The Impact of Imitation on Vaccination Behavior in Social Contact Networks , 2012, PLoS Comput. Biol..
[136] E. Meron,et al. Diversity of vegetation patterns and desertification. , 2001, Physical review letters.
[137] Samit Bhattacharyya,et al. Evolutionary Game Theory and Social Learning Can Determine How Vaccine Scares Unfold , 2012, PLoS Comput. Biol..
[138] Gerardo Chowell,et al. Adaptive Vaccination Strategies to Mitigate Pandemic Influenza: Mexico as a Case Study , 2009, PloS one.
[139] V. Jansen,et al. Modelling the influence of human behaviour on the spread of infectious diseases: a review , 2010, Journal of The Royal Society Interface.
[140] Pan-Ping Liu,et al. Time delay induces pattern transition in spatial epidemics: Comment on "Pattern transitions in spatial epidemics: Mechanisms and emergent properties" by Gui-Quan Sun et al. , 2016, Physics of life reviews.
[141] Jack Carr,et al. Uniqueness of travelling waves for nonlocal monostable equations , 2004 .
[142] N. Ferguson,et al. Planning for smallpox outbreaks , 2003, Nature.
[143] W. Wilson,et al. The evolution of parasite manipulation of host dispersal , 2006, Proceedings of the Royal Society B: Biological Sciences.
[144] N. Ferguson,et al. Chaos, persistence, and evolution of strain structure in antigenically diverse infectious agents. , 1998, Science.
[145] Simon A. Levin,et al. Stochastic Spatial Models: A User's Guide to Ecological Applications , 1994 .
[146] Claudio Cioffi-Revilla,et al. Computational social science , 2010 .
[147] V. M. Kenkre,et al. Effects of gradual spatial variation in resources on population extinction: Analytic calculations for abrupt transitions , 2011 .
[148] Trish Berglund,et al. Changing patterns of infectious disease , 1986 .
[149] R. Baric,et al. Prophylactic and postexposure efficacy of a potent human monoclonal antibody against MERS coronavirus , 2015, Proceedings of the National Academy of Sciences.
[150] Zhen Wang,et al. How human location-specific contact patterns impact spatial transmission between populations? , 2013, Scientific Reports.
[151] Rongsong Liu,et al. Traveling waves of the spread of avian influenza , 2012 .
[152] Zhen Jin,et al. Effect of noise on the pattern formation in an epidemic model , 2010 .
[153] Nassim Nicholas Taleb,et al. On the Super-Additivity and Estimation Biases of Quantile Contributions , 2014, 1405.1791.
[154] R. Anderson,et al. Dynamics in a lattice epidemic model , 1996 .
[155] Zhen Jin,et al. Periodic solutions in a herbivore-plant system with time delay and spatial diffusion , 2016 .
[156] Alessandro Vespignani,et al. Absence of epidemic threshold in scale-free networks with degree correlations. , 2002, Physical review letters.
[157] V. M. Kenkre,et al. Extinction of refugia of hantavirus infection in a spatially heterogeneous environment. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.
[158] R. Durrett,et al. The Importance of Being Discrete (and Spatial) , 1994 .
[159] Boris Podobnik,et al. Agent-Based Mapping of Credit Risk for Sustainable Microfinance , 2015, PloS one.
[160] JD Lundgren,et al. Changing patterns of mortality across Europe in patients infected with HIV-1 , 1998, The Lancet.
[161] Lin Wang,et al. Spatial epidemiology of networked metapopulation: an overview , 2014, bioRxiv.
[162] V. M. Kenkre,et al. Traveling waves of infection in the hantavirus epidemics , 2002, Bulletin of mathematical biology.
[163] D. Boyd,et al. CRITICAL QUESTIONS FOR BIG DATA , 2012 .
[164] Q. Ouyang,et al. Transition from spirals to defect turbulence driven by a convective instability , 1996, Nature.
[165] Michael A. Andrews,et al. Disease Interventions Can Interfere with One Another through Disease-Behaviour Interactions , 2015, PLoS Comput. Biol..
[166] R. Gray,et al. Spatial and temporal organization during cardiac fibrillation , 1998, Nature.
[167] D. Earn,et al. Vaccination and the theory of games. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[168] V. M. Kenkre,et al. Nonlinearity in bacterial population dynamics: Proposal for experiments for the observation of abrupt transitions in patches , 2008, Proceedings of the National Academy of Sciences.
[169] M. Newman. Spread of epidemic disease on networks. , 2002, Physical review. E, Statistical, nonlinear, and soft matter physics.
[170] J. Childs,et al. Genetic identification of a hantavirus associated with an outbreak of acute respiratory illness. , 1993, Science.
[171] E. Girardi,et al. Chronic hepatitis C in Italy: the vanishing of the first and most consistent epidemic wave. , 2013, Digestive and liver disease : official journal of the Italian Society of Gastroenterology and the Italian Association for the Study of the Liver.
[172] W John Edmunds,et al. Case fatality rate for Ebola virus disease in west Africa , 2014, The Lancet.
[173] Yu Wang,et al. Origin and diversity of novel avian influenza A H7N9 viruses causing human infection: phylogenetic, structural, and coalescent analyses , 2013, The Lancet.
[174] Zhen Jin,et al. Phase transition in spatial epidemics using cellular automata with noise , 2011, Ecological Research.
[175] Alison P Galvani,et al. The dynamics of risk perceptions and precautionary behavior in response to 2009 (H1N1) pandemic influenza , 2010, BMC infectious diseases.
[176] Dawei Zhao,et al. Immunization of Epidemics in Multiplex Networks , 2014, PloS one.
[177] Peter Jung,et al. Noise in Spatially Extended Systems , 2001 .
[178] M G Clerc,et al. Analytical studies of fronts, colonies, and patterns: Combination of the Allee effect and nonlocal competition interactions. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.
[179] Ralf Engbert,et al. Chance and chaos in population biology—Models of recurrent epidemics and food chain dynamics , 1994 .
[180] Piero Poletti,et al. Optimal vaccination choice, vaccination games, and rational exemption: an appraisal. , 2009, Vaccine.
[181] A. Garfinkel,et al. Nonlinear and Stochastic Dynamics in the Heart. , 2014, Physics reports.
[182] Lada A. Adamic,et al. Computational Social Science , 2009, Science.
[183] Zhen Jin,et al. Spatial dynamics in a predator-prey model with Beddington-DeAngelis functional response. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[184] Stefania Bertazzon,et al. GIS and Public Health , 2014, ISPRS Int. J. Geo Inf..
[185] S. Levin,et al. Emergent trade-offs and selection for outbreak frequency in spatial epidemics , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[186] M. Bartlett. Measles Periodicity and Community Size , 1957 .
[187] M. Pascual,et al. Stochastic amplification in epidemics , 2007, Journal of The Royal Society Interface.
[188] Mercedes Pascual,et al. Skeletons, noise and population growth: the end of an old debate? , 2004, Trends in ecology & evolution.
[189] Zhen Jin,et al. Pattern formation in a spatial S–I model with non-linear incidence rates , 2007 .
[190] James O Lloyd-Smith,et al. The Potential Impact of Male Circumcision on HIV in Sub-Saharan Africa , 2006, PLoS medicine.
[191] Lidia A. Braunstein,et al. Intermittent social distancing strategy for epidemic control , 2011, Physical review. E, Statistical, nonlinear, and soft matter physics.
[192] Michel Langlais,et al. Qualitative analysis and travelling wave solutions for the SI model with vertical transmission , 2011 .
[193] Ira M Longini,et al. Critical immune and vaccination thresholds for determining multiple influenza epidemic waves. , 2012, Epidemics.
[194] D. Earn,et al. A simple model for complex dynamical transitions in epidemics. , 2000, Science.
[195] Juan Zhang,et al. Pattern formation of a spatial predator-prey system , 2012, Appl. Math. Comput..
[196] Christophe Fraser,et al. New Strategies for the Elimination of Polio from India , 2006, Science.
[197] B. Grenfell,et al. Integrating life history and cross-immunity into the evolutionary dynamics of pathogens , 2006, Proceedings of the Royal Society B: Biological Sciences.
[198] Yan Yang,et al. Coupling infectious diseases, human preventive behavior, and networks – A conceptual framework for epidemic modeling , 2011, Social Science & Medicine.
[199] M. Rietkerk,et al. Self-Organized Patchiness and Catastrophic Shifts in Ecosystems , 2004, Science.
[200] Albert-László Barabási,et al. Understanding individual human mobility patterns , 2008, Nature.
[201] V. M. Kenkre,et al. Periodically varying externally imposed environmental effects on population dynamics. , 2004, Physical review. E, Statistical, nonlinear, and soft matter physics.
[202] G. Roberts,et al. Predicting undetected infections during the 2007 foot-and-mouth disease outbreak , 2009, Journal of The Royal Society Interface.
[203] Dawei Zhao,et al. Multiple routes transmitted epidemics on multiplex networks , 2013, ArXiv.
[204] Grégoire Nicolis,et al. Self-Organization in nonequilibrium systems , 1977 .
[205] V. Guttal,et al. Changing skewness: an early warning signal of regime shifts in ecosystems. , 2008, Ecology letters.
[206] Patrick E. McSharry,et al. Prediction of epileptic seizures: are nonlinear methods relevant? , 2003, Nature Medicine.
[207] Samit Bhattacharyya,et al. A game dynamic model for delayer strategies in vaccinating behaviour for pediatric infectious diseases. , 2010, Journal of theoretical biology.
[208] H. Stanley,et al. Quantifying Trading Behavior in Financial Markets Using Google Trends , 2013, Scientific Reports.
[209] Vito Latora,et al. Evolutionary Dynamics of Time-Resolved Social Interactions , 2013, Physical review. E, Statistical, nonlinear, and soft matter physics.
[210] Boris Podobnik,et al. Dynamically rich, yet parameter-sparse models for spatial epidemiology: Comment on "Coupled disease-behavior dynamics on complex networks: A review" by Z. Wang et al. , 2015, Physics of life reviews.
[211] Zhen Jin,et al. Chaos induced by breakup of waves in a spatial epidemic model with nonlinear incidence rate , 2008 .
[212] Zhen Jin,et al. Influence of infection rate and migration on extinction of disease in spatial epidemics. , 2010, Journal of theoretical biology.
[213] Ervin Sejdic,et al. Medicine: Adapt current tools for handling big data , 2014, Nature.
[214] Zhen Jin,et al. Modeling the transmission dynamics of Ebola virus disease in Liberia , 2015, Scientific Reports.
[215] Wan-Tong Li,et al. Existence and stability of traveling wave fronts in reaction advection diffusion equations with nonlocal delay , 2007 .
[216] A L Lloyd,et al. Spatial heterogeneity in epidemic models. , 1996, Journal of theoretical biology.
[217] Dawei Zhao,et al. Immunity of multiplex networks via acquaintance vaccination , 2015 .
[218] O. Bjørnstad,et al. Travelling waves and spatial hierarchies in measles epidemics , 2001, Nature.
[219] Xiang Li,et al. The Impact of Human Location-Specific Contact Pattern on the SIR epidemic Transmission between Populations , 2013, Int. J. Bifurc. Chaos.
[220] M. Lipsitch,et al. Vaccine allocation in a declining epidemic , 2012, Journal of The Royal Society Interface.
[221] S. Levin,et al. Diffusion and Ecological Problems: Modern Perspectives , 2013 .
[222] V. M. Kenkre. Statistical mechanical considerations in the theory of the spread of the Hantavirus , 2005 .
[223] Z. Wang,et al. The structure and dynamics of multilayer networks , 2014, Physics Reports.
[224] Zhen Jin,et al. Persistence, extinction and spatio-temporal synchronization of SIRS spatial models , 2008, 0809.1968.