Literature DB >> 32224467

RAG-FW: A Hybrid Convolutional Framework for the Automated Extraction of Retinal Lesions and Lesion-Influenced Grading of Human Retinal Pathology.

Taimur Hassan, Muhammad Usman Akram, Naoufel Werghi, Muhammad Noman Nazir.   

Abstract

The identification of retinal lesions plays a vital role in accurately classifying and grading retinopathy. Many researchers have presented studies on optical coherence tomography (OCT) based retinal image analysis over the past. However, to the best of our knowledge, there is no framework yet available that can extract retinal lesions from multi-vendor OCT scans and utilize them for the intuitive severity grading of the human retina. To cater this lack, we propose a deep retinal analysis and grading framework (RAG-FW). RAG-FW is a hybrid convolutional framework that extracts multiple retinal lesions from OCT scans and utilizes them for lesion-influenced grading of retinopathy as per the clinical standards. RAG-FW has been rigorously tested on 43,613 scans from five highly complex publicly available datasets, containing multi-vendor scans, where it achieved the mean intersection-over-union score of 0.8055 for extracting the retinal lesions and the accuracy of 98.70% for the correct severity grading of retinopathy.

Entities:  

Year:  2021        PMID: 32224467     DOI: 10.1109/JBHI.2020.2982914

Source DB:  PubMed          Journal:  IEEE J Biomed Health Inform        ISSN: 2168-2194            Impact factor:   5.772


  2 in total

1.  Continual Learning Objective for Analyzing Complex Knowledge Representations.

Authors:  Asad Mansoor Khan; Taimur Hassan; Muhammad Usman Akram; Norah Saleh Alghamdi; Naoufel Werghi
Journal:  Sensors (Basel)       Date:  2022-02-21       Impact factor: 3.576

2.  FN-OCT: Disease Detection Algorithm for Retinal Optical Coherence Tomography Based on a Fusion Network.

Authors:  Zhuang Ai; Xuan Huang; Jing Feng; Hui Wang; Yong Tao; Fanxin Zeng; Yaping Lu
Journal:  Front Neuroinform       Date:  2022-06-16       Impact factor: 3.739

  2 in total

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