Selected article for: "forecast model and real time"

Author: Farooq, Junaid; Bazaz, Muhammad Abid
Title: A Deep Learning algorithm for modeling and forecasting of COVID-19 in five worst affected states of India
  • Cord-id: n11gqg64
  • Document date: 2020_9_30
  • ID: n11gqg64
    Snippet: In this paper, deep learning is employed to propose an Artificial Neural Network (ANN) based online incremental learning technique for developing an adaptive and non-intrusive analytical model of Covid-19 pandemic to analyze the temporal dynamics of the disease spread. The model is able to intelligently adapt to new ground realities in real-time eliminating the need to retrain the model from scratch every time a new data set is received from the continuously evolving training data. The model is
    Document: In this paper, deep learning is employed to propose an Artificial Neural Network (ANN) based online incremental learning technique for developing an adaptive and non-intrusive analytical model of Covid-19 pandemic to analyze the temporal dynamics of the disease spread. The model is able to intelligently adapt to new ground realities in real-time eliminating the need to retrain the model from scratch every time a new data set is received from the continuously evolving training data. The model is validated with the historical data and a forecast of the disease spread for 30-days is given in the five most affected states of India.

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