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PMID: 40105179 Published · ppublish English Journal Article

Advancement of post-market surveillance of medical devices leveraging artificial intelligence: Patient monitors case study.

Bećirović F, Spahić L, Merdović N, Gurbeta Pokvić L, Badnjević A

Abstract

BackgroundHealthcare institutions throughout the world rely on medical devices to provide their services reliably and effectively. However, medical devices can, and do sometimes fail. These failures pose significant risk to patients.ObjectiveOne way to address these issues is through the use of artificial intelligence for the detection of medical device failure. This goal of this study was to develop automated systems utilising machine learning algorithms to predict patient monitor performance and potential failures based on data collected during regular safety and performance inspections.MethodsThe system developed in this study utilised machine learning techniques as its core. Throughout the study four algorithms were utilised. These algorithms include Decision Tree, Random Forest, Linear Regression and Support Vector Machines.ResultsFinal results showed that Random Forest algorithms had the best performance on various metrics among the four developed models. It achieved accuracy of 94% and precision and recall of 70% and 93% respectively.ConclusionThis study shows that use of systems like the one developed in this study have the potential to improve management and maintenance of medical devices.

Keywords
artificial intelligence classification healthcare machine learning medical device
MeSH 主题词
Humans Product Surveillance, Postmarketing/methods Artificial Intelligence Machine Learning Algorithms Equipment and Supplies/standards Support Vector Machine Decision Trees Equipment Failure
作者与单位
共 5 位作者,点击展开单位 / ORCID
Bećirović Faruk ORCID
Research Institute Verlab for Biomedical Engineering, Medical Devices and Artificial Intelligence, Sarajevo, Bosnia and Herzegovina.
Spahić Lemana ORCID
Research Institute Verlab for Biomedical Engineering, Medical Devices and Artificial Intelligence, Sarajevo, Bosnia and Herzegovina. | Research and Development Center for Bioengineering BioIRC, Kragujevac, Serbia.
Merdović Nejra
Research Institute Verlab for Biomedical Engineering, Medical Devices and Artificial Intelligence, Sarajevo, Bosnia and Herzegovina.
Gurbeta Pokvić Lejla
Research Institute Verlab for Biomedical Engineering, Medical Devices and Artificial Intelligence, Sarajevo, Bosnia and Herzegovina. | University of Donja Gorica, Podgorica, Montenegro.
Badnjević Almir
Faculty of Pharmacy, University of Sarajevo, Sarajevo, Bosnia and Herzegovina.
Article Info
Journal
Technology and health care : official journal of the European Society for Engineering and Medicine
Abbr.
Technol Health Care
ISSN
1878-7401
Published
2025-03-00
电子出版
2024-00-25
页码
974-980
Language
English
Country/Region
United States
NLM ID
9314590
勘误 / 撤稿关联
ExpressionOfConcernIn
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