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Switched forced SEIRDV compartmental models to monitor COVID-19 spread and immunization in Italy
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作者 Erminia Antonelli Elena Loli Piccolomini Fabiana Zama 《Infectious Disease Modelling》 2022年第1期1-15,共15页
This paper presents a new hybrid compartmental model for studying the COVID-19 epidemic evolution in Italy since the beginning of the vaccination campaign started on 2020/12/27 and shows forecasts of the epidemic evol... This paper presents a new hybrid compartmental model for studying the COVID-19 epidemic evolution in Italy since the beginning of the vaccination campaign started on 2020/12/27 and shows forecasts of the epidemic evolution in Italy in the first six months.The proposed compartmental model subdivides the population into six compartments and extends the SEIRD model proposed in[E.L.Piccolomini and F.Zama,PLOS ONE,15(8):1e17,082020]by adding the vaccinated population and framing the global model as a hybridswitched dynamical system.Aiming to represent the quantities that characterize the epidemic behaviour from an accurate fit to the observed data,we partition the observation time interval into sub-intervals.The model parameters change according to a switching rule depending on the data behaviour and the infection rate continuity condition.In particular,we study the representation of the infection rate both as linear and exponential piecewise continuous functions.We choose the length of sub-intervals balancing the data fit with the model complexity through the Bayesian Information Criterion.We tested the model on italian data and on local data from Emilia-Romagna region.The calibration of the model shows an excellent representation of the epidemic behaviour in both cases.Thirty days forecasts have proven to well reproduce the infection spread,better for regional than for national data.Both models produce accurate predictions of infected,but the exponential-based one perform better in most of the cases.Finally,we discuss different possible forecast scenarios obtained by simulating an increased vaccination rate. 展开更多
关键词 Compartmental model with vaccine seirdv Switched model Hybrid model Forcing function Model calibration
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隔室模型和深度学习模型对COVID-19的预测研究
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作者 刘树颖 《中国新技术新产品》 2023年第8期8-11,共4页
该文以隔室模型作为主干网络,在基础的SEIRD隔室模型上,考虑疫苗对疫情的影响,增加疫苗接种隔室,形成优化的SEIRDV隔室模型。结合隔室模型的可解释性和神经网络的准确性,通过PINN神经网络对隔室模型的微分方程参数进行学习。重点关注感... 该文以隔室模型作为主干网络,在基础的SEIRD隔室模型上,考虑疫苗对疫情的影响,增加疫苗接种隔室,形成优化的SEIRDV隔室模型。结合隔室模型的可解释性和神经网络的准确性,通过PINN神经网络对隔室模型的微分方程参数进行学习。重点关注感染隔室的数据,以解释疫情的动态变化和爆发机制,并对神经网络得到的微分方程参数进行合理性检验。 展开更多
关键词 SEIRD隔室模型 seirdv隔室模型 PINN神经网络 COVID-19预测
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