Development of an AI-Enabled System for Pain Monitoring Using Skin Conductance Sensoring in Socks

Author:

Korving Helen12,Zhou Di3,Xiang Huan4,Sterkenburg Paula15,Markopoulos Panos6,Barakova Emilia6

Affiliation:

1. Department of Child and Family Studies, Vrije Universiteit Amsterdam, Van der Boechorststraat, 7, Amsterdam, 1081 BT, The Netherlands

2. Department of Industrial Design, Eindhoven University of Technology, De Goene Loper 3, Eindhoven, 5612 AE, The Netherlands

3. School of Design Arts and Media, Nanjing University of Science and Technology, 200 Xiaolingwei, 210094 Nanjing, Jiangsu, P. R. China

4. School of Artificial Intelligence and Computer, Jiangnan University, 1800 Lihu Avenue, Wuxi, Jiangsu 214122, P. R. China

5. Bartiméus, Oude Arnhemse Bovenweg, 3, 3941 XM, Doorn, The Netherlands

6. Department of Industrial Design, Eindhoven University of Technology, De Groene Loper 3, Eindhoven, 5612 AE, The Netherlands

Abstract

Background: Where self-report is unfeasible or observations are difficult, physiological estimates of pain are needed. Methods: Pain-data from 30 healthy adults were gathered to create a database of physiological pain responses. A model was then developed, to analyze pain-data and visualize the AI-estimated level of pain on a mobile app. Results: The initial low precision and F1-score of the pain classification algorithm were resolved by interpolating a percentage of similar data. Discussion: This system presents a novel approach to assess pain in noncommunicative people with the use of a sensor sock, AI predictor and mobile app. Performance analysis and the limitations of the AI algorithm are discussed.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Computer Networks and Communications,General Medicine

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