Compliance with hand hygiene is one of the key factors in preventing infectious diseases and ensuring patientsafety in healthcare institutions. In recent years, digital technologies have been increasingly introduced to automate themonitoring of sanitary and hygienic procedures. This study examines modern computer vision and machine learningmethods for analyzing the condition of hands and determining nail growth parameters.The aim of this research is to develop a digital approach to monitoring hand hygiene based on the analysis of nail plateimages and the application of segmentation algorithms. As part of the study, a dataset of nail images was created, datapreprocessing was performed, and the effectiveness of several segmentation models, including U-Net, Mask R-CNN,and YOLOv8-seg, was evaluated.The results of the study demonstrated that the use of deep learning models provides high segmentation accuracy andallows automatic detection of nail boundaries and the grown part of the nail. Among the tested models, Mask R-CNNshowed the highest accuracy indicators. The obtained results confirm the potential of artificial intelligence technologiesfor digital monitoring of hand hygiene and prevention of infectious disease spread in healthcare institutions
| Mualliflar | Azimov, Shavkat, Temurbek , Zokir, Rasulova, Durdona, Nalibaeva, Dilorom |
|---|---|
| Jurnal | Муҳандислик ва Иқтисодиёт |
| Nashr sanasi | 2026-03-01 |
| Jild | 4 |
| Son | 3 |
| Til | Ingliz |
hand hygiene, computer vision, image segmentation, deep learning, Mask R-CNN, YOLOv8, medical information technologies, healthcare digitalization
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