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The issues and trends in healthcare delivery are constantly changing. The COVID-19 pandemic is one recent issue that wreaked havoc on healthcare systems, causing a shortage of healthcare workers, high demand for medicines and supplies, and increased medical expenditure due to a lack of insurance. Other issues include rising healthcare costs and care fragmentation.
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Using Machine Learning for Dynamic Authentication in Telehealth: A Tutorial.

Mehdi Hazratifard1, Fayez Gebali1, Mohammad Mamun2

  • 1Department of Electrical and Computer Engineering, University of Victoria, Victoria, BC V8W 2Y2, Canada.

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Summary
This summary is machine-generated.

Machine learning enhances telehealth security by using unique user behaviors for robust authentication, making systems safer against sophisticated IoT attacks. This approach offers continuous, context-aware security for remote healthcare access.

Keywords:
IoT securitycontinuous authenticationdeep learningdynamic authenticationmachine learningtelehealth

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Area of Science:

  • Computer Science
  • Cybersecurity
  • Machine Learning

Background:

  • Telehealth systems are increasingly prevalent, offering remote healthcare access via smart devices and 5G.
  • Ensuring user privacy and security is paramount in these online systems.
  • Sophisticated Internet of Things (IoT) attacks are a growing concern, challenging traditional security protocols.

Purpose of the Study:

  • To explore machine learning applications for developing robust authentication protocols in telehealth.
  • To address the limitations of traditional authentication methods against advanced cyber threats.
  • To highlight the benefits of machine learning in securing human and IoT device access.

Main Methods:

  • Utilizing machine learning to analyze biometric information for human authentication.
  • Employing machine learning to process physical layer features for IoT device authentication.
  • Developing dynamic authentication models trained on hidden patterns in user and device data.

Main Results:

  • Machine learning-based authentication models demonstrate increased reliability compared to traditional methods.
  • Behavioral traits of humans and devices are identified as difficult-to-counterfeit security features.
  • Machine learning facilitates continuous and context-aware authentication, adapting to changing user and device behaviors.

Conclusions:

  • Machine learning offers a promising approach to significantly improve telehealth security and user privacy.
  • Dynamic, behavior-based authentication powered by machine learning provides a more robust defense against evolving cyber threats.
  • The integration of machine learning enables more secure, adaptive, and reliable remote healthcare systems.