COVID-ABS: An agent-based model of COVID-19 epidemic to simulate health and economic effects of social distancing interventions
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Petrônio C. L. Silva | Petronio C. L. Silva | Paulo V. C. Batista | H'elder S. Lima | Marcos A. Alves | Frederico G. Guimaraes | Rodrigo C. P. Silva | Paulo V. C. Batista | H'elder S. Lima | M. A. Alves | F. G. Guimarães | Rodrigo C. P. Silva
[1] F. Piazza,et al. Analysis and forecast of COVID-19 spreading in China, Italy and France , 2020, Chaos, Solitons & Fractals.
[2] Leandro dos Santos Coelho,et al. Short-term forecasting COVID-19 cumulative confirmed cases: Perspectives for Brazil , 2020, Chaos, Solitons & Fractals.
[3] Kathy Leung,et al. Nowcasting and forecasting the potential domestic and international spread of the 2019-nCoV outbreak originating in Wuhan, China: a modelling study (vol 395, pg 689, 2020) , 2020 .
[4] P. Colaneri,et al. Modelling the COVID-19 epidemic and implementation of population-wide interventions in Italy , 2020, Nature Medicine.
[5] T. Jefferson,et al. Physical interventions to interrupt or reduce the spread of respiratory viruses: systematic review , 2007, BMJ : British Medical Journal.
[6] Carl A. B. Pearson,et al. The effect of control strategies to reduce social mixing on outcomes of the COVID-19 epidemic in Wuhan, China: a modelling study , 2020, The Lancet Public Health.
[7] Michael S. Warren,et al. Mobility Changes in Response to COVID-19 , 2020, ArXiv.
[8] K. Chatterjee,et al. Healthcare impact of COVID-19 epidemic in India: A stochastic mathematical model , 2020, Medical Journal Armed Forces India.
[9] Benjamin Braun,et al. Phase transitions and social distancing control measures for SARS-CoV-2 on small world networks , 2020, ArXiv.
[10] Hannah R. Meredith,et al. The Incubation Period of Coronavirus Disease 2019 (COVID-19) From Publicly Reported Confirmed Cases: Estimation and Application , 2020, Annals of Internal Medicine.
[11] Aditya Gopalan,et al. How Reliable are Test Numbers for Revealing the COVID-19 Ground Truth and Applying Interventions? , 2020, Journal of the Indian Institute of Science.
[12] Sanyi Tang,et al. The effectiveness of quarantine and isolation determine the trend of the COVID-19 epidemics in the final phase of the current outbreak in China , 2020, International Journal of Infectious Diseases.
[13] Christl A. Donnelly,et al. Estimates of the severity of coronavirus disease 2019: a model-based analysis , 2020, The Lancet Infectious Diseases.
[14] Benno Liebchen,et al. Strategic spatiotemporal vaccine distribution increases the survival rate in an infectious disease like Covid-19 , 2020, Scientific reports.
[15] C. Whittaker,et al. Report 9: Impact of non-pharmaceutical interventions (NPIs) to reduce COVID19 mortality and healthcare demand , 2020 .
[16] R. Stott,et al. The World Bank , 2008, Annals of tropical medicine and parasitology.
[17] David N. Fisman,et al. Mathematical modelling of COVID-19 transmission and mitigation strategies in the population of Ontario, Canada , 2020, Canadian Medical Association Journal.
[18] Muchammad Abrori,et al. A Mathematical Model of the Covid-19 Cases in Indonesia (Under and Without Lockdown Enforcement) , 2020 .
[19] Danny Ibarra-Vega,et al. Lockdown, one, two, none, or smart. Modeling containing covid-19 infection. A conceptual model , 2020, Science of The Total Environment.
[20] Mikhail Prokopenko,et al. Modelling transmission and control of the COVID-19 pandemic in Australia , 2020, Nature Communications.
[21] Jing Zhao,et al. Early Transmission Dynamics in Wuhan, China, of Novel Coronavirus–Infected Pneumonia , 2020, The New England journal of medicine.
[22] Sophie Cousins,et al. New Zealand eliminates COVID-19 , 2020, The Lancet.
[23] G. Leung,et al. Nowcasting and forecasting the potential domestic and international spread of the 2019-nCoV outbreak originating in Wuhan, China: a modelling study , 2020, The Lancet.
[24] Delfim F. M. Torres,et al. Mathematical modeling of COVID-19 transmission dynamics with a case study of Wuhan , 2020, Chaos, Solitons & Fractals.
[25] Xiaofeng Gao,et al. Preliminary Assessment of the COVID-19 Outbreak Using 3-Staged Model e-ISHR , 2020, Journal of Shanghai Jiaotong University (Science).
[26] Allan A. Pacey,et al. Lockdown , 2020, Human fertility.
[27] S. Engle,et al. Staying at Home: Mobility Effects of COVID-19 , 2020, SSRN Electronic Journal.
[28] M. R. Ferrández,et al. Mathematical modeling of the spread of the coronavirus disease 2019 (COVID-19) taking into account the undetected infections. The case of China , 2020, Communications in Nonlinear Science and Numerical Simulation.
[29] F. Hobbs,et al. Age and Sex Composition , 2004 .
[30] Frank Dignum,et al. Analysing the Combined Health, Social and Economic Impacts of the Corovanvirus Pandemic Using Agent-Based Social Simulation , 2020, Minds and Machines.
[31] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[32] M. Baguelin,et al. Report 3: Transmissibility of 2019-nCoV , 2020 .
[33] N. G. Davies,et al. The Effect of Control Strategies that Reduce Social Mixing on Outcomes of the COVID-19 Epidemic in Wuhan, China , 2020, SSRN Electronic Journal.
[34] Benno Liebchen,et al. Strategic Spatiotemporal Vaccine Distribution Halves Deaths due to an Infectious Disease. , 2020 .
[35] Yuan Zhang,et al. Physical distancing, face masks, and eye protection to prevent person-to-person transmission of SARS-CoV-2 and COVID-19: a systematic review and meta-analysis , 2020, The Lancet.
[36] Sebastiano Battiato,et al. Estimation of Unreported Novel Coronavirus (SARS-CoV-2) Infections from Reported Deaths: A Susceptible–Exposed–Infectious–Recovered–Dead Model , 2020, Journal of clinical medicine.
[37] Enrico Quagliarini,et al. How to restart? An agent-based simulation model towards the definition of strategies for COVID-19 "second phase" in public buildings , 2020, ArXiv.
[38] M. Baguelin,et al. Report 4: Severity of 2019-novel coronavirus (nCoV) , 2020 .
[39] M. Peirlinck,et al. Outbreak dynamics of COVID-19 in China and the United States , 2020, Biomechanics and Modeling in Mechanobiology.
[40] Eduardo L. Brugnago,et al. Strong correlations between power-law growth of COVID-19 in four continents and the inefficiency of soft quarantine strategies , 2020, Chaos.
[41] Anna Rotkirch,et al. Universal Masking is Urgent in the COVID-19 Pandemic: SEIR and Agent Based Models, Empirical Validation, Policy Recommendations , 2020, ArXiv.
[42] Xinxin Zhang,et al. Phase-adjusted estimation of the number of Coronavirus Disease 2019 cases in Wuhan, China , 2020, Cell Discovery.
[43] Gary E. Weissman,et al. Locally Informed Simulation to Predict Hospital Capacity Needs During the COVID-19 Pandemic , 2020, Annals of Internal Medicine.
[44] Julien Arino,et al. A simple model for COVID-19 , 2020, Infectious Disease Modelling.
[45] Huiying Liang,et al. Modeling the trend of coronavirus disease 2019 and restoration of operational capability of metropolitan medical service in China: a machine learning and mathematical model-based analysis , 2020, Global Health Research and Policy.
[46] H. Van Dyke Parunak,et al. Agent-Based Modeling vs. Equation-Based Modeling: A Case Study and Users' Guide , 1998, MABS.
[47] M. Olfson,et al. Facing the COVID-19 epidemic in NYC: a stochastic agent-based model of various intervention strategies , 2020, medRxiv.
[48] Sunhwa Choi,et al. Estimating the reproductive number and the outbreak size of COVID-19 in Korea , 2020, Epidemiology and Health.
[49] Eunok Jung,et al. School Opening Delay Effect on Transmission Dynamics of Coronavirus Disease 2019 in Korea: Based on Mathematical Modeling and Simulation Study , 2020, Journal of Korean medical science.
[50] T. Kuniya. Prediction of the Epidemic Peak of Coronavirus Disease in Japan, 2020 , 2020, Journal of clinical medicine.
[51] Uwe Aickelin,et al. Comparing Stochastic Differential Equations and Agent-Based Modelling and Simulation for Early-Stage Cancer , 2014, PloS one.
[52] Y. Hu,et al. Clinical features of patients infected with 2019 novel coronavirus in Wuhan, China , 2020, The Lancet.
[53] N. Barlow,et al. Accurate closed-form solution of the SIR epidemic model , 2020, Physica D: Nonlinear Phenomena.
[54] Kamal Shah,et al. On a comprehensive model of the novel coronavirus (COVID-19) under Mittag-Leffler derivative , 2020, Chaos, Solitons & Fractals.
[55] R. Adhikari,et al. Age-structured impact of social distancing on the COVID-19 epidemic in India , 2020, 2003.12055.
[56] Claudio Márcio Amaral de Oliveira Lima,et al. Information about the new coronavirus disease (COVID-19) , 2020, Radiologia brasileira.
[57] Max Sousa de Lima,et al. Vertical social distancing policy is ineffective to contain the COVID-19 pandemic. , 2020, Cadernos de saude publica.
[58] Tsuyoshi Murata,et al. {m , 1934, ACML.
[59] C. Anastassopoulou,et al. Data-based analysis, modelling and forecasting of the COVID-19 outbreak , 2020, medRxiv.
[60] Benjamin Braun,et al. Simulating phase transitions and control measures for network epidemics caused by infections with presymptomatic, asymptomatic, and symptomatic stages , 2020, PloS one.
[61] Yasuyuki Todo,et al. The Propagation of the Economic Impact through Supply Chains: The Case of a Mega-City Lockdown against the Spread of COVID-19 , 2020, SSRN Electronic Journal.
[62] B. Barzel,et al. Alternating quarantine for sustainable mitigation of COVID-19 , 2020, 2004.01453.
[63] Marc Timme,et al. Limited containment options of COVID-19 outbreak revealed by regional agent-based simulations for South Africa , 2020, F1000Research.