Automated glaucoma detection from fundus images using wavelet-based denoising and machine learning

Author:

Khan Sibghatullah I.1ORCID,Choubey Shruti Bhargava1,Choubey Abhishek1,Bhatt Abhishek2,Naishadhkumar Pandya Vyomal1,Basha Mohammed Mahaboob1

Affiliation:

1. Department of Electronics and Communication Engineering, Sreenidhi Institute of Science and Technology, Hyderabad, Telangana, India

2. Department of Electronics and Telecommunication, College of Engineering, Pune, India

Abstract

Glaucoma is a domineering and irretrievable neurodegenerative eye disease produced by the optical nerve head owed to extended intra-ocular stress inside the eye. Recognition of glaucoma is an essential job for ophthalmologists. In this paper, we propose a methodology to classify fundus images into normal and glaucoma categories. The proposed approach makes use of image denoising of digital fundus images by utilizing a non-Gaussian bivariate probability distribution function to model the statistics of wavelet coefficients of glaucoma images. The traditional image features were extracted followed by the popular feature selection algorithm. The selected features are then fed to the least square support vector machine classifier employing various kernel functions. The comparison result shows that the proposed approach offers maximum classification accuracy of nearly 91.22% over the existing best approaches.

Publisher

SAGE Publications

Subject

Computer Science Applications,General Engineering,Modeling and Simulation

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