作者
Fanji Ari Mukti, C Eswaran, Noramiza Hashim, Ho Chiung Ching, Mohamed Uvaze Ahamed Ayoobkhan
发表日期
2018
期刊
International Journal of Engineering & Technology
卷号
7
页码范围
154-157
出版商
Engg Journals Publications
简介
In this paper, an automated system for grading the severity level of Diabetic Retinopathy (DR) disease based on fundus images is presented. Features are extracted using fast discrete curvelet transform. These features are applied to hierarchical support vector machine (SVM) classifier to obtain four types of grading levels, namely, normal, mild, moderate and severe. These grading levels are determined based on the number of anomalies such as microaneurysms, hard exudates and haemorrhages that are present in the fundus image. The performance of the proposed system is evaluated using fundus images from the Messidor database. Experiment results show that the proposed system can achieve an accuracy rate of 86.23%.
引用总数
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