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Deep Learning model for prediction and prevention of COVID-19 outbreak

Deep Learning model for prediction and prevention of COVID-19 outbreak in Franklin, TN

Current price: $69.00
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Deep Learning model for prediction and prevention of COVID-19 outbreak

Barnes and Noble

Deep Learning model for prediction and prevention of COVID-19 outbreak in Franklin, TN

Current price: $69.00
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This study focuses on mathematical modeling of COVID-19 transmission in Cameroon using deep learning techniques. Initially, we established a mathematical model that characterizes the transmission dynamics of COVID-19 within the Cameroonian population, incorporating both time-dependent and constant parameters. A theoretical analysis of the model is presented, proving the existence, uniqueness, positivity, and boundedness of the solutions, as well as identifying equilibrium points. Additionally, we implement two deep learning models, an LSTM (Long Short-Term Memory) and a GRU (Gated Recurrent Unit) to identify the time-dependent parameters based on available daily data. Through training, testing, and predictions, our models achieve high accuracy, with coefficients of determination ranging from 0.96 to 0.98. We further aim to extend this study by exploring various artificial intelligence models, including machine learning approaches, to refine our COVID-19 transmission model for Cameroon and adapt it for application in other countries.
This study focuses on mathematical modeling of COVID-19 transmission in Cameroon using deep learning techniques. Initially, we established a mathematical model that characterizes the transmission dynamics of COVID-19 within the Cameroonian population, incorporating both time-dependent and constant parameters. A theoretical analysis of the model is presented, proving the existence, uniqueness, positivity, and boundedness of the solutions, as well as identifying equilibrium points. Additionally, we implement two deep learning models, an LSTM (Long Short-Term Memory) and a GRU (Gated Recurrent Unit) to identify the time-dependent parameters based on available daily data. Through training, testing, and predictions, our models achieve high accuracy, with coefficients of determination ranging from 0.96 to 0.98. We further aim to extend this study by exploring various artificial intelligence models, including machine learning approaches, to refine our COVID-19 transmission model for Cameroon and adapt it for application in other countries.

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Barnes & Noble is the world’s largest retail bookseller and a leading retailer of content, digital media and educational products. Our Nook Digital business offers a lineup of NOOK® tablets and e-Readers and an expansive collection of digital reading content through the NOOK Store®. Barnes & Noble’s mission is to operate the best omni-channel specialty retail business in America, helping both our customers and booksellers reach their aspirations, while being a credit to the communities we serve.

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