Статья

ANN Assisted-IoT Enabled COVID-19 Patient Monitoring

G. Rathee, S. Garg, G. Kaddoum, Y. Wu, D. Dushantha, A. Alamri,
2021

COVID-19 is an extremely dangerous disease because of its highly infectious nature. In order to provide a quick and immediate identification of infection, a proper and immediate clinical support is needed. Researchers have proposed various Machine Learning and smart IoT based schemes for categorizing the COVID-19 patients. Artificial Neural Networks (ANN) that are inspired by the biological concept of neurons are generally used in various applications including healthcare systems. The ANN scheme provides a viable solution in the decision making process for managing the healthcare information. This manuscript endeavours to illustrate the applicability and suitability of ANN by categorizing the status of COVID-19 patients' health into infected (IN), uninfected (UI), exposed (EP) and susceptible (ST). In order to do so, Bayesian and back propagation algorithms have been used to generate the results. Further, viterbi algorithm is used to improve the accuracy of the proposed system. The proposed mechanism is validated over various accuracy and classification parameters against conventional Random Tree (RT), Fuzzy C Means (FCM) and REPTree (RPT) methods.

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Версии

  • 1. Version of Record от 2021-01-01

Метаданные

Об авторах
  • G. Rathee
    Jaypee University of Information Technology, Solan
  • S. Garg
    École de Technologie Supérieure, Tomsk Polytechnic University
  • G. Kaddoum
    École de Technologie Supérieure
  • Y. Wu
    University of Exeter
  • D. Dushantha
    Tomsk Polytechnic University, Faculty of Engineering
  • A. Alamri
    King Saud University
Название журнала
  • IEEE Access
Том
  • 9
Страницы
  • 42483-42492
Финансирующая организация
  • Tomsk Polytechnic University
Номер гранта
  • RRSG/20/B15
Тип документа
  • journal article
Тип лицензии Creative Commons
  • CC BY
Правовой статус документа
  • Свободная лицензия
Источник
  • scopus