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| Content Provider | Tech Science Press |
|---|---|
| Author | Mehmood, Khalid Khan, Hikmat Ullah Khan, Saleem Hayat Bhutta, Muhammad Raheel Ramzan, Muhammad Nawaz, Fouzia Khan, Hikmat Khan, Saleem Bhutta, Muhammad |
| Abstract | Diabetic retinopathy (DR) is a retinal disease that causes irreversible blindness. DR occurs due to the high blood sugar level of the patient, and it is clumsy to be detected at an early stage as no early symptoms appear at the initial level. To prevent blindness, early detection and regular treatment are needed. Automated detection based on machine intelligence may assist the ophthalmologist in examining the patients’ condition more accurately and efficiently. The purpose of this study is to produce an automated screening system for recognition and grading of diabetic retinopathy using machine learning through deep transfer and representational learning. The artificial intelligence technique used is transfer learning on the deep neural network, Inception-v4. Two configuration variants of transfer learning are applied on Inception-v4: Fine-tune mode and fixed feature extractor mode. Both configuration modes have achieved decent accuracy values, but the fine-tuning method outperforms the fixed feature extractor configuration mode. Fine-tune configuration mode has gained 96.6% accuracy in early detection of DR and 97.7% accuracy in grading the disease and has outperformed the state of the art methods in the relevant literature. |
| Related Links | https://www.techscience.com/cmc/v66n2/40654 |
| Starting Page | 1631 |
| Ending Page | 1645 |
| ISSN | 15462218 |
| DOI | 10.32604/cmc.2020.012887 |
| Issue Number | 2 |
| Journal | Computers, Materials & Continua (CMC) |
| Volume Number | 66 |
| e-ISSN | 15462226 |
| Language | English |
| Publisher Date | 2020-11-26 |
| Access Restriction | Open |
| Subject Keyword | artificial intelligence machine learning Diabetic retinopathy deep neural network automated screening system transfer and representational learning |
| Content Type | Text |
| Resource Type | Article |
| Subject | Computer Science Applications |
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