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Automatic detection and recognition of multiple macular lesions in retinal optical coherence tomography images with multi-instance multilabel learning.

Authors :
Leyuan Fang
Liumao Yang
Shutao Li
Rabbani, Hossein
Zhimin Liu
Qinghua Peng
Xiangdong Chen
Source :
Journal of Biomedical Optics. Jun2017, Vol. 22 Issue 6, p1-7. 7p.
Publication Year :
2017

Abstract

Detection and recognition of macular lesions in optical coherence tomography (OCT) are very important for retinal diseases diagnosis and treatment. As one kind of retinal disease (e.g., diabetic retinopathy) may contain multiple lesions (e.g., edema, exudates and microaneurysms) and eye patients may suffer from multiple retinal diseases, multiple lesions often coexist within one retinal image. Therefore, one single-lesion-based detector may not support the diagnosis of clinical eye diseases. To address this issue, we propose a multi-instance multilabel-based lesions recognition (MIML-LR) method for the simultaneous detection and recognition of multiple lesions. The proposed MIML-LR method consists of the following steps: (1) segment the regions of interest (ROIs) for different lesions, (2) compute descriptive instances (features) for each lesion region, (3) construct multilabel detectors and (4) recognize each ROI with the detectors. The proposed MIML-LR method was tested on 823 clinically labeled OCT images with normal macular and macular with three common lesions: epiretinal membrane, edema and drusen. For each input OCT image, our MIML-LR method can automatically identify the number of lesions and assign the class labels, achieving the average accuracy of 88.72% for the cases with multiple lesions, which better assists macular disease diagnosis and treatment. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10833668
Volume :
22
Issue :
6
Database :
Academic Search Index
Journal :
Journal of Biomedical Optics
Publication Type :
Academic Journal
Accession number :
124244382
Full Text :
https://doi.org/10.1117/1.JBO.22.6.066014