RAC-CNN: multimodal deep learning based automatic detection and classification of rod and cone photoreceptors in adaptive optics scanning light ophthalmoscope images

被引:33
作者
Cunefare, David [1 ]
Huckenpahler, Alison L. [2 ]
Patterson, Emily J. [3 ]
Dubra, Alfredo [4 ]
Carroll, Joseph [2 ,3 ]
Farsiu, Sina [1 ,5 ]
机构
[1] Duke Univ, Dept Biomed Engn, Durham, NC 27708 USA
[2] Med Coll Wisconsin, Dept Cell Biol Neurobiol & Anat, Milwaukee, WI 53226 USA
[3] Med Coll Wisconsin, Dept Ophthalmol & Visual Sci, Milwaukee, WI 53226 USA
[4] Stanford Univ, Dept Ophthalmol, Palo Alto, CA 94303 USA
[5] Duke Univ, Med Ctr, Dept Ophthalmol, Durham, NC 27710 USA
来源
BIOMEDICAL OPTICS EXPRESS | 2019年 / 10卷 / 08期
基金
美国国家卫生研究院;
关键词
COHERENCE TOMOGRAPHY IMAGES; DIABETIC-RETINOPATHY; RETINAL VASCULATURE; HIGH-RESOLUTION; GANGLION-CELLS; GRAPH-THEORY; SEGMENTATION; IDENTIFICATION; LAYER; REPEATABILITY;
D O I
10.1364/BOE.10.003815
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Quantification of the human rod and cone photoreceptor mosaic in adaptive optics scanning light ophthalmoscope (AOSLO) images is useful for the study of various retinal pathologies. Subjective and time-consuming manual grading has remained the gold standard for evaluating these images, with no well validated automatic methods for detecting individual rods having been developed. We present a novel deep learning based automatic method, called the rod and cone CNN (RAC-CNN), for detecting and classifying rods and cones in multimodal AOSLO images. We test our method on images from healthy subjects as well as subjects with achromatopsia Over a range of retinal eccentricities. We show that our method is on par with human grading for detecting rods and cones. (C) 2019 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:3815 / 3832
页数:18
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