A modified classical-quantum model for diabetic foot ulcer classification

Author:

Amin Javeria1,Anjum Muhammad Almas2,Sharif Abida3,Sharif Muhammad Imran4

Affiliation:

1. Department of Computer Science, University of Wah, Wah Cantt, Pakistan

2. National University of Technology (NUTECH), Islamabad, Pakistan

3. Department of Computer Science, COMSATS University Islamabad, Vehari Campus, Pakistan

4. Department of Computer Science, COMSATS University Islamabad, Wah Campus, Pakistan

Abstract

DFU is one of the most spreading diseases now day approximately more than one million patients suffer due to this disease. Undergo the procedure of removing their lower limb of the body due to the reason that they are not able enough to recognize this disease and get proper treatment from the doctors or physicians. Therefore, there is an urgent need of developing a Computer-Aided Design (CAD) system that can easily detect Diabetic Foot Ulcer (DFU). Therefore, in this study, a pre-trained ResNet-50 model and modified classical-quantum model are utilized for diabetic foot ulcer classification into corresponding classes such as normal/abnormal and ischaemia/non-ischaemia. The presented approach achieved classification accuracy is greater than 0.90 on abnormal/normal, ischaemia/non-ischaemia, and infection and non-infection foot images. The reported results depict that the proposed method outperformed as compared to recently published work in the domain of diabetic foot ulcers.

Publisher

IOS Press

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Human-Computer Interaction,Software

Reference43 articles.

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