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Internet of Sensing Things-Based Machine Learning Approach to Predict Parkinson

  • Sohana Afroz,
  • Tajim Md. Niamat Ullah Akhund,
  • Tarikuzzaman Khan,
  • Md. Umaid Hasan,
  • Rashida Jesmin,
  • M. Mesbahuddin Sarker

摘要

With the help of the Internet of things, therapeutic science has progressed surprisingly. Lots of elderly individuals are affected by Parkinson’s disease. This work proposed an Internet of sensing things-based system to collect data from Parkinson’s affected people analyze the collected data in a cloud server with machine learning algorithms and predict the condition of the patient. Multiple types of sensors are used and tested. Micro-controllers are used to collect data from sensors and send them to a cloud server. Then, multiple machine learning algorithms are used to predict the patient’s condition. Results between several methods are also compared.