Modeling the Heterogeneity of Dengue Transmission in a City
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Shengjie Lai | Zhongjie Li | Weizhong Yang | Qiyong Liu | S. Lai | Weizhong Yang | Haixia Wu | Qiyong Liu | Jinfeng Wang | Jinfeng Wang | L.Sh. Kong | Z. Li | Haixia Wu | Lingcai Kong | S. Lai
[1] N. Komalamisra,et al. Larval occurrence, oviposition behavior and biting activity of potential mosquito vectors of dengue on Samui Island, Thailand. , 2001, Journal of vector ecology : journal of the Society for Vector Ecology.
[2] C. Dorso,et al. Modeling dengue outbreaks. , 2010, Mathematical biosciences.
[3] Robert M. May,et al. HOST-PARASITOID SYSTEMS IN PATCHY ENVIRONMENTS: A PHENOMENOLOGICAL MODEL , 1978 .
[4] A. Kucharski,et al. The role of superspreading in Middle East respiratory syndrome coronavirus (MERS-CoV) transmission. , 2015, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[5] Michael P. Hassell,et al. Discrete and continuous insect populations in tropical environments , 1989 .
[6] C. Cosner,et al. The effects of human movement on the persistence of vector-borne diseases. , 2009, Journal of theoretical biology.
[7] D. Hall,et al. THE MOSQUITO , 1909, British medical journal.
[8] C. Dye,et al. Heterogeneities in the transmission of infectious agents: implications for the design of control programs. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[9] R. Barrera,et al. Ecological Factors Influencing Aedes aegypti (Diptera: Culicidae) Productivity in Artificial Containers in Salinas, Puerto Rico , 2006, Journal of medical entomology.
[10] Stephan Karl,et al. A spatial simulation model for dengue virus infection in urban areas , 2014, BMC Infectious Diseases.
[11] Tao Wang,et al. Evaluation of Inapparent Dengue Infections During an Outbreak in Southern China , 2015, PLoS neglected tropical diseases.
[12] Jinfeng Wang,et al. Modeling Heterogeneity in Direct Infectious Disease Transmission in a Compartmental Model , 2016, International journal of environmental research and public health.
[13] David M. Hartley,et al. A systematic review of mathematical models of mosquito-borne pathogen transmission: 1970–2010 , 2013, Journal of The Royal Society Interface.
[14] World Health Organization. Dengue vaccine: WHO position paper, July 2016 - recommendations. , 2017, Vaccine.
[15] Michael A. Johansson,et al. Models of the impact of dengue vaccines: a review of current research and potential approaches. , 2011, Vaccine.
[16] Dongsheng Ren,et al. A Survey of Insecticide Resistance in Aedes albopictus (Diptera: Culicidae) During a 2014 Dengue Fever Outbreak in Guangzhou, China , 2016, Journal of Economic Entomology.
[17] T. Hollingsworth,et al. Understanding heterogeneities in mosquito-bite exposure and infection distributions for the elimination of lymphatic filariasis , 2018, Proceedings of the Royal Society B: Biological Sciences.
[18] P. Reiter,et al. A model of the transmission of dengue fever with an evaluation of the impact of ultra-low volume (ULV) insecticide applications on dengue epidemics. , 1992, The American journal of tropical medicine and hygiene.
[19] Andrew C. Comrie,et al. Climate and Dengue Transmission: Evidence and Implications , 2013, Environmental health perspectives.
[20] C. Favier,et al. Early determination of the reproductive number for vector‐borne diseases: the case of dengue in Brazil , 2006, Tropical medicine & international health : TM & IH.
[21] M. Hashizume,et al. Optimal Timing of Insecticide Fogging to Minimize Dengue Cases: Modeling Dengue Transmission among Various Seasonalities and Transmission Intensities , 2011, PLoS neglected tropical diseases.
[22] P. E. Kopp,et al. Superspreading and the effect of individual variation on disease emergence , 2005, Nature.
[23] A. Tran,et al. A climate-driven abundance model to assess mosquito control strategies , 2012 .
[24] H. Seegers,et al. Influence of the transmission function on a simulated pathogen spread within a population , 2007, Epidemiology and Infection.
[25] Fred W. Glover,et al. Scatter Search and Local Nlp Solvers: A Multistart Framework for Global Optimization , 2006, INFORMS J. Comput..
[26] Charly Favier,et al. Influence of spatial heterogeneity on an emerging infectious disease: the case of dengue epidemics , 2005, Proceedings of the Royal Society B: Biological Sciences.
[27] Kevin R. Long,et al. A dengue model with a dynamic Aedes albopictus vector population , 2010 .
[28] L. Luo,et al. The dengue preface to endemic in mainland China: the historical largest outbreak by Aedes albopictus in Guangzhou, 2014 , 2017, Infectious Diseases of Poverty.
[29] James W. Jones,et al. Heterogeneous Feeding Patterns of the Dengue Vector, Aedes aegypti, on Individual Human Hosts in Rural Thailand , 2014, PLoS neglected tropical diseases.
[30] R. Barrera,et al. Population Dynamics of Aedes aegypti and Dengue as Influenced by Weather and Human Behavior in San Juan, Puerto Rico , 2011, PLoS neglected tropical diseases.
[31] John S. Brownstein,et al. The global distribution and burden of dengue , 2013, Nature.
[32] H M Yang,et al. Assessing the effects of temperature on the population of Aedes aegypti, the vector of dengue , 2009, Epidemiology and Infection.
[33] T. Alex Perkins,et al. Heterogeneity, Mixing, and the Spatial Scales of Mosquito-Borne Pathogen Transmission , 2013, PLoS Comput. Biol..
[34] Andrew L. Nevai,et al. A model for the spatial transmission of dengue with daily movement between villages and a city. , 2014, Mathematical medicine and biology : a journal of the IMA.
[35] Michael A. Johansson,et al. The Incubation Periods of Dengue Viruses , 2012, PloS one.
[36] N. Hens,et al. Dynamic Epidemiological Models for Dengue Transmission: A Systematic Review of Structural Approaches , 2012, PLoS ONE.
[37] P. Gething,et al. Refining the Global Spatial Limits of Dengue Virus Transmission by Evidence-Based Consensus , 2012, PLoS neglected tropical diseases.
[38] Cheryl J. Briggs,et al. The Dynamics of Insect-Pathogen Interactions in Stage-Structured Populations , 1995, The American Naturalist.
[39] James O. Lloyd-Smith,et al. Inference of R 0 and Transmission Heterogeneity from the Size Distribution of Stuttering Chains , 2013, PLoS Comput. Biol..
[40] W. S. Romoser,et al. The energetic costs of diving in Aedes aegypti and Aedes albopictus pupae. , 2001, Journal of the American Mosquito Control Association.
[41] A. Nisalak,et al. Dengue viremia titer, antibody response pattern, and virus serotype correlate with disease severity. , 2000, The Journal of infectious diseases.
[42] C. Favier,et al. Dynamics of dengue epidemics in urban contexts , 2008, Tropical medicine & international health : TM & IH.
[43] F. Ferdousi,et al. Identification of Essential Containers for Aedes Larval Breeding to Control Dengue in Dhaka, Bangladesh , 2015, Tropical medicine and health.
[44] W. Kröger,et al. Recommendations , 1915, Nature.
[45] T. Scott,et al. Socially structured human movement shapes dengue transmission despite the diffusive effect of mosquito dispersal. , 2014, Epidemics.
[46] L. Allen,et al. Comparison of deterministic and stochastic SIS and SIR models in discrete time. , 2000, Mathematical biosciences.
[47] A. Galvani,et al. The Interactive Roles of Aedes aegypti Super-Production and Human Density in Dengue Transmission , 2012, PLoS neglected tropical diseases.
[48] D. Olivieri. Environmental Management , 2006 .
[49] M. Halloran,et al. The Effects of Vector Movement and Distribution in a Mathematical Model of Dengue Transmission , 2013, PloS one.
[50] H. Delatte,et al. Influence of Temperature on Immature Development, Survival, Longevity, Fecundity, and Gonotrophic Cycles of Aedes albopictus, Vector of Chikungunya and Dengue in the Indian Ocean , 2009, Journal of medical entomology.
[51] J. Watmough,et al. Reproduction numbers and sub-threshold endemic equilibria for compartmental models of disease transmission. , 2002, Mathematical biosciences.
[52] Duane J. Gubler,et al. Dengue, Urbanization and Globalization: The Unholy Trinity of the 21st Century , 2011, Tropical medicine and health.
[53] F. Gould,et al. Assessing the Impact of Density Dependence in Field Populations of Aedes aegypti , 2011, Journal of vector ecology : journal of the Society for Vector Ecology.
[54] A. Tran,et al. A Rainfall- and Temperature-Driven Abundance Model for Aedes albopictus Populations , 2013, International journal of environmental research and public health.
[55] L. Luo,et al. Identification of Aedes albopictus Larval Index Thresholds in the Transmission of Dengue in Guangzhou, China , 2015, Journal of vector ecology : journal of the Society for Vector Ecology.
[56] T. Scott,et al. House-to-house human movement drives dengue virus transmission , 2012, Proceedings of the National Academy of Sciences.
[57] S. Samanta,et al. Interpolation of climate variables and temperature modeling , 2011, Theoretical and Applied Climatology.
[58] David L. Smith,et al. Modelling adult Aedes aegypti and Aedes albopictus survival at different temperatures in laboratory and field settings , 2013, Parasites & Vectors.
[59] H. Solari,et al. A Stochastic Population Dynamics Model for Aedes Aegypti: Formulation and Application to a City with Temperate Climate , 2006, Bulletin of mathematical biology.
[60] M. Mogi,et al. Biology of mosquitoes. , 1987 .
[61] N. Barlow,et al. Non‐linear transmission and simple models for bovine tuberculosis , 2000 .
[62] Andrew J Tatem,et al. The changing epidemiology of dengue in China, 1990-2014: a descriptive analysis of 25 years of nationwide surveillance data , 2015, BMC Medicine.
[63] Dawei Guan,et al. The epidemiological characteristics and genetic diversity of dengue virus during the third largest historical outbreak of dengue in Guangdong, China, in 2014. , 2016, The Journal of infection.
[64] C. Beierkuhnlein,et al. Extrinsic Incubation Period of Dengue: Knowledge, Backlog, and Applications of Temperature Dependence , 2013, PLoS neglected tropical diseases.
[65] A. Wilder-Smith,et al. Epidemiology of dengue: past, present and future prospects , 2013, Clinical epidemiology.
[66] Peng Gong,et al. Climate and the Timing of Imported Cases as Determinants of the Dengue Outbreak in Guangzhou, 2014: Evidence from a Mathematical Model , 2016, PLoS neglected tropical diseases.
[67] V. Singh,et al. Comparison of Ae. aegypti breeding in localities of different socio-economic groups of Delhi, India , 2015 .
[68] Sumana Sanyal,et al. Clinical and epidemiological features of the 2014 large-scale dengue outbreak in Guangzhou city, China , 2016, BMC Infectious Diseases.
[69] Wenjun Ma,et al. Community Involvement in Dengue Outbreak Control: An Integrated Rigorous Intervention Strategy , 2016, PLoS neglected tropical diseases.
[70] S. Juliano,et al. POPULATION DYNAMICS , 2007, Journal of the American Mosquito Control Association.