Abstract

Internet of Things (IoT) communication technologies have brought immense revolutions in various domains, especially in health monitoring systems. Machine learning techniques coupled with advanced artificial intelligence techniques detect patterns associated with diseases and health conditions. Presently, the scientific community is focused on enhancing IoT-enabled applications by integrating blockchain technology with machine learning models to benefit medical report management, drug traceability, tracking infectious diseases, etc. To date, contemporary state-of-the-art techniques have presented various efforts on the adaptability of blockchain and machine learning in IoT applications; however, there exist various essential aspects that must also be incorporated to achieve more robust performance. This study presents a comprehensive survey of emerging IoT technologies, machine learning, and blockchain for healthcare applications. The reviewed articles comprise a plethora of research articles published in the web of science. The analysis is focused on research articles related to keywords such as ‘machine learning’, blockchain, ‘Internet of Things or IoT’, and keywords conjoined with ‘healthcare’ and ‘health application’ in six famous publisher databases, namely IEEEXplore, Nature, ScienceDirect, MDPI, SpringerLink, and Google Scholar. We selected and reviewed 263 articles in total. The topical survey of the contemporary IoT-based models is presented in healthcare domains in three steps. Firstly, a detailed analysis of healthcare applications of IoT, blockchain, and machine learning demonstrates the importance of the discussed fields. Secondly, the adaptation mechanism of machine learning and blockchain in IoT for healthcare applications are discussed to delineate the scope of the mentioned techniques in IoT domains. Finally, the challenges and issues of healthcare applications based on machine learning, blockchain, and IoT are discussed. The presented future directions in this domain can significantly help the scholarly community determine research gaps to address.

Highlights

  • Internet of Things (IoT) integrates large numbers of physical devices through the Internet to collect, share, and assess a vast amount of data [1]

  • Machine learning techniques coupled with advanced artificial intelligence techniques detect patterns associated with diseases and health conditions

  • This study presents a comprehensive survey of emerging IoT technologies, machine learning, and blockchain for healthcare applications

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Summary

Introduction

Internet of Things (IoT) integrates large numbers of physical devices through the Internet to collect, share, and assess a vast amount of data [1]. Contemporary state-of-the-art techniques have presented various efforts on the adaptability of blockchain and machine learning in IoT applications [32,33] These technologies benefit healthcare systems by predicting diseases, drug tracing, patient tracking, and combating deadlier pandemics such as COVID-19. Machine learning models based on the huge amount of data collected from medical sensors and devices are used to predict and classify different healthcare diseases [35]. This study presents a comprehensive survey of emerging IoT technologies, machine learning, and blockchain for healthcare applications. These health care applications are derived from the recent web of science indexed literature.

Research Methodology and Results
Background of ML
Background
Internet of Things
Machine Learning
Background of Blockchain
Healthcare Applications
IoT-Based Healthcare Applications
Machine Learning Based Healthcare Applications
Blockchain Based Applications in Healthcare
Leveraging Technologies for COVID-19 and Future Pandemics
COVID-19
IoT-Based Technologies to Mitigate COVID-19 Challenges
Tracking COVID-19 Using Smart Thermometers
Battery-Operated Buttons
Drone Technologies
Telehealth in a Pandemic
Machine Learning Technologies to Mitigate COVID-19 Challenges
Face Recognition System
Temperature Identification System
Voice-Based Detection
Face Mask Detection
Blockchain Technologies to Mitigate COVID-19 Challenges
Sharing Patient Data
Social Distancing
Smart Hospital
Tracing Epidemic Origin
Convergence Challenges and Solutions
Adaptation Challenges
Solution of Adaptation Challenges
Future Pandemics Preparedness
Limitations of the Study
Conclusions
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