An Ensemble Learning Approach for Glaucoma Detection in Retinal Images

سال انتشار: 1401
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 141

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شناسه ملی سند علمی:

JR_MJEE-16-4_007

تاریخ نمایه سازی: 25 بهمن 1401

چکیده مقاله:

To stop vision loss from glaucoma, early identification and regular screening are crucial. Convolutional neural networks (CNN) have been effectively used in recent years to diagnose glaucoma automatically from color fundus pictures. CNNs can extract distinctive characteristics directly from the fundus pictures, as opposed to the current automatic screening techniques. In this study, a CNN-based deep learning architecture is created for the categorization of normal and glaucomatous fundus pictures. In this paper, we propose a deep learning-based framework for the detection of glaucoma based on retinal images. Our proposed approach utilizes the two CNN-based models, namely Inception and DenseNet, in order to classify the input images. We also show the impact of transfer learning on the training and the validation processes and put forward an effective pipeline with lower trainable parameters for the target task. Our experiments on a collected dataset demonstrate the efficacy of the proposed model by achieving an accuracy of ۹۳.۸۴%, a precision of ۹۲.۸۳%, and a recall of ۹۵.۰۰%.

نویسندگان

Marwah M. Mahdi

Anesthesia Techniques Department, Al-Mustaqbal University College, Babylon, Iraq

Mohammed Abdulkreem Mohammed

Department of Anesthesia Techniques, Al-Noor University College, Bartella, Iraq

Haider Al-Chalibi

Medical Technical College, Al-Farahidi University, Baghdad, Iraq

Bashar S. Bashar

Al-Nisour University College, Baghdad, Iraq

Hayder Adnan Sadeq

Al-Hadi University College, Baghdad,۱۰۰۱۱, Iraq

Talib Mohammed Jawad Abbas

Medical device engineering, Ashur University College, Baghdad, Iraq

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