DeepGLEAM: an hybrid mechanistic and deep learning model for COVID-19 forecasting

arxiv(2021)

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摘要
We introduce DeepGLEAM, a hybrid model for COVID-19 forecasting. DeepGLEAM combines a mechanistic stochastic simulation model GLEAM with deep learning. It uses deep learning to learn the correction terms from GLEAM, which leads to improved performance. We further integrate various uncertainty quantification methods to generate confidence intervals. We demonstrate DeepGLEAM on real-world COVID-19 mortality forecasting tasks.
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关键词
deepgleam learning model,deepgleam learning
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