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Assessing Early Stage Open-Angle Glaucoma in Patients by Isolated-Check Visual Evoked Potential
Published on: May 25, 2020
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Glaucoma classification based on intra-class and extra-class discriminative correlation and consensus ensemble
Balasubramanian Kishore1, N P Ananthamoorthy2
1Dr Mahalingam College of Engineering and Technology, Pollachi, India.
Genomics
|May 30, 2020
Summary
This study introduces a novel method for diagnosing glaucoma using fused features and ensemble classifiers, achieving 99.2% accuracy in fundus image analysis for computer-aided diagnosis systems.
Area of Science:
- Ophthalmology
- Medical Imaging
- Machine Learning
Background:
- Glaucoma diagnosis from fundus images is crucial for Computer-Aided Diagnosis (CAD) systems.
- Accurate and efficient automated classification methods are needed to aid clinicians.
Purpose of the Study:
- To propose a novel fused feature extraction and ensemble classifier fusion technique for glaucoma diagnosis.
- To enhance the accuracy and convergence of glaucoma classification using fundus images.
Main Methods:
- A three-stage approach involving image preprocessing, feature extraction, and feature fusion using Intra-Class and Extra-Class Discriminative Correlation Analysis (IEDCA).
- Ensemble classification using Support Vector Machine (SVM), Random Forest (RF), and K-Nearest Neighbor (KNN), followed by classifier fusion via Consensus-based Combining Method (CCM).
Main Results:
- The proposed method achieved a classification accuracy of 99.2% on public datasets (HRF and DRIVE).
- The fusion classifier demonstrated improved accuracy and convergence compared to individual classifiers.
- Cross-dataset validation confirmed the robustness of the approach.
Conclusions:
- The novel fused feature extraction and ensemble classifier fusion technique offers a highly accurate and effective method for glaucoma diagnosis.
- This approach shows significant potential for integration into Computer-Aided Diagnosis (CAD) systems for ophthalmology.
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