DocumentCode
2947287
Title
Computer aided diagnostic system for grading of diabetic retinopathy
Author
Tariq, Anum ; Akram, M. Usman ; Javed, M. Younus
Author_Institution
Dept. of Comput. & Software Eng., Bahria Univ., Islamabad, Pakistan
fYear
2013
fDate
16-19 April 2013
Firstpage
30
Lastpage
35
Abstract
The automated detection and diagnosis of Diabetic Retinopathy (DR) is very critical to save the patient´s vision and to help the ophthalmologists in mass screening of diabetes sufferers. DR is a progressive eye disease and should be detected as early as possible. In this paper, we present a new system for detection and classification of different DR lesions i.e. Microaneurysms (MAs), Haemorrhage (H), Hard Exudates (HE) and Cotton Wool Spots (CWS). We proposed a three stage system in which first stage extracts all possible candidate lesions present in a fundus image suing filter bank. Then feature sets are computed for each candidate lesion using different properties and features followed by classification of lesions. The evaluation of proposed system is performed using retinal image databases with the help of different performance matrices and the results show the validity of proposed system.
Keywords
biomedical optical imaging; blood; blood vessels; diseases; eye; feature extraction; image classification; image colour analysis; medical image processing; automated detection; automated diagnosis; computer aided diagnostic system; cotton wool spots; diabetic retinopathy classification; diabetic retinopathy detection; diabetic retinopathy grading; feature sets; fundus image suing filter bank; haemorrhage; hard exudates; mass screening; microaneurysms; ophthalmologists; optical imaging; patient vision; progressive eye disease; retinal image databases; Biomedical imaging; Diabetes; Feature extraction; Lesions; Retina; Retinopathy; Support vector machines;
fLanguage
English
Publisher
ieee
Conference_Titel
Computational Intelligence in Medical Imaging (CIMI), 2013 IEEE Fourth International Workshop on
Conference_Location
Singapore
ISSN
2326-991X
Print_ISBN
978-1-4673-5919-1
Type
conf
DOI
10.1109/CIMI.2013.6583854
Filename
6583854
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