Novel risk index for the identification of age-related macular degeneration using radon transform and DWT features

被引:47
作者
Acharya, U. Rajendra [1 ,2 ,3 ]
Mookiah, Muthu Rama Krishnan [1 ]
Koh, Joel E. W. [1 ]
Tan, Jen Hong [1 ]
Noronha, Kevin [4 ]
Bhandary, Sulatha V. [5 ]
Rao, A. Krishna [5 ]
Hagiwara, Yuki [1 ]
Chua, Chua Kuang [1 ]
Laude, Augustinus [6 ]
机构
[1] Ngee Ann Polytech, Dept Elect & Comp Engn, Singapore 599489, Singapore
[2] SIM Univ, Sch Sci & Technol, Dept Biomed Engn, Singapore 599491, Singapore
[3] Univ Malaya, Dept Biomed Engn, Fac Engn, Kuala Lumpur 50603, Malaysia
[4] St Francis Inst Technol, Dept Elect & Telecommun, Mumbai 400103, Maharashtra, India
[5] Kasturba Med Coll & Hosp, Dept Ophthalmol, Manipal 576104, India
[6] Tan Tock Seng Hosp, Natl Healthcare Grp Eye Inst, Singapore 308433, Singapore
关键词
Fundus imaging; Age-related macular degeneration; Radon transform; Discrete wavelet transform; Locality sensitive discriminant analysis; Computed aided diagnosis; DISCRETE WAVELET TRANSFORM; DIABETIC-RETINOPATHY; INTEGRATED INDEX; AUTOMATED DETECTION; RETINAL IMAGES; DIAGNOSIS; DISEASE; DRUSEN; SEGMENTATION; EXTRACTION;
D O I
10.1016/j.compbiomed.2016.04.009
中图分类号
Q [生物科学];
学科分类号
090105 [作物生产系统与生态工程];
摘要
Age-related Macular Degeneration (AMD) affects the central vision of aged people. It can be diagnosed due to the presence of drusen, Geographic Atrophy (GA) and Choroidal Neovascularization (CNV) in the fundus images. It is labor intensive and time-consuming for the ophthalmologists to screen these images. An automated digital fundus photography based screening system can overcome these drawbacks. Such a safe, non-contact and cost-effective platform can be used as a screening system for dry AMD. In this paper, we are proposing a novel algorithm using Radon Transform (RT), Discrete Wavelet Transform (DINT) coupled with Locality Sensitive Discriminant Analysis (LSDA) for automated diagnosis of AMD. First the image is subjected to RT followed by DWT. The extracted features are subjected to dimension reduction using LSDA and ranked using t-test. The performance of various supervised classifiers namely Decision Tree (DT), Support Vector Machine (SVM), Probabilistic Neural Network (PNN) and k-Nearest Neighbor (k-NN) are compared to automatically discriminate to normal and AMD classes using ranked LSDA components. The proposed approach is evaluated using private and public datasets such as ARIA and STARE. The highest classification accuracy of 99.49%, 96.89% and 100% are reported for private, ARIA and STARE datasets. Also, AMD index is devised using two LSDA components to distinguish two classes accurately. Hence, this proposed system can be extended for mass AMD screening. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:131 / 140
页数:10
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