Effectiveness of Feature Extraction by PCA-Based Detection and Naive Bayes Classifier for Glaucoma Images

Author:

Shiny Christobel J.1ORCID,Vimala D.1ORCID,Joshan Athanesious J.2ORCID,Christopher Ezhil Singh S.3ORCID,Murugan Sivaraj4ORCID

Affiliation:

1. Department of Electronics Communication Engineering, Sri Ramakrishna Institute of Technology, Coimbatore, Tamil Nadu, India

2. School of Computer Science and Engineering, Vellore Institute of Technology, Chennai, Tamil Nadu, India

3. Department of Mechanical Engineering, Vimal Jyothi Engineering College, Kannur, Kerala, India

4. Faculty of Manufacturing, Department of Mechanical Engineering, Hawassa University, Hawassa, Ethiopia

Abstract

After cataract, glaucoma is one of the second leading retinal diseases in the world. This paper presents the methodology to detect the glaucoma using principal component analysis. The images are involved in dilation as a preprocessing, enhancement using the contrast limited adaptive histogram equalization method, and followed by the extraction of features using principal component analysis. The extracted features are classified using support vector machine, Naive Bayes, and K-nearest neighbor classifiers. Comparing with other classifiers, the Naive Bayes provides high accuracy of 95% which demonstrates the effectiveness of the feature extraction and the classifier.

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Media Technology,Communication

Reference27 articles.

1. Optic disk feature extraction via modified deformable model technique for glaucoma analysis

2. Determination of cup and disc ratio of optical nerve head for diagnosis of glaucoma on stereo retinal fundus image pairs;C. Muramatsu;Proceedings of SPIE,2009

3. Optic Disk and Cup Segmentation From Monocular Color Retinal Images for Glaucoma Assessment

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