Macular Ischemia Quantification Using Deep-Learning Denoised Optical Coherence Tomography Angiography in Branch Retinal Vein Occlusion

被引:6
作者
Yeung, Ling [1 ,2 ]
Lee, Yih-Cherng [3 ]
Lin, Yu-Tze [1 ]
Lee, Tay-Wey [4 ]
Lai, Chi-Chun [1 ,2 ]
机构
[1] Chang Gung Mem Hosp, Dept Ophthalmol, 222 Mai Chin Rd, Keelung 204, Taiwan
[2] Chang Gung Univ, Coll Med, Taoyuan, Taiwan
[3] Natl Taiwan Univ, Grad Inst Commun Engn, Taipei, Taiwan
[4] Chang Gung Mem Hosp, Biostat Consultat Ctr, Keelung, Taiwan
来源
TRANSLATIONAL VISION SCIENCE & TECHNOLOGY | 2021年 / 10卷 / 07期
关键词
branch retinal vein occlusion; deep learning; denoise; neural network; nonperfusion area; optical coherence tomography angiography; vessel density; AUTOMATED QUANTIFICATION; PREDICTIVE FACTORS; VISUAL-ACUITY; AREA; NONPERFUSION; EDEMA; ASSOCIATION; PROGRESSION; ARTIFACTS; EYES;
D O I
10.1167/tvst.10.7.23
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
Purpose: To examine whether deep-learning denoised optical coherence tomography angiography (OCTA) images could enhance automated macular ischemia quantification in branch retinal vein occlusion (BRVO). Methods: This retrospective, single-center, cross-sectional study enrolled 74 patients with BRVO and 46 age-matched healthy subjects. The severity of macular ischemia was graded as mild, moderate, or severe. Denoised OCTA images were produced using a neural network model. Quantitative parameters derived from denoised images, including vessel density and nonperfusion area, were compared with those derived from the OCTA machine. The main outcome measures were correlations between quantitative parameters, and areas under receiver operating characteristic curves (AUCs) in classifying the severity of the macular ischemia. Results: The vessel density and nonperfusion area from denoised images were correlated strongly with the corresponding parameters from machine-derived images in control eyes and BRVO eyes with mild or moderate macular ischemia (all P < 0.001). However, no such correlation was found in eyes with severe macular ischemia. The vessel density and nonperfusion area from denoised images had significantly larger area under receiver operating characteristic curve than those derived from the original images in classifying moderate versus severe macular ischemia (0.927 vs 0.802 [P = 0.042] and 0.946 vs 0.797, [P = 0.022], respectively). There were no significant differences in the areas under receiver operating characteristic curve between the denoised images and the machine-derived parameters in classifying control versus BRVO, and mild versus moderate macular ischemia. Conclusions: A neural network model is useful for removing speckle noise on OCTA images and facilitating the automated grading of macular ischemia in eyes with BRVO. Translational Relevance: Deep-learning denoised optical coherence tomography angiography images could enhance automated macular ischemia quantification.
引用
收藏
页数:11
相关论文
共 50 条
[31]   Evaluation of microvascular network with optical coherence tomography angiography (OCTA) in branch retinal vein occlusion (BRVO) [J].
Lulu Chen ;
Mingzhen Yuan ;
Lu Sun ;
Yuelin Wang ;
Youxin Chen .
BMC Ophthalmology, 20
[32]   MACULAR BLOOD FLOW CHANGES IN BRANCH RETINAL VEIN OCCLUSION EXAMINED BY OPTICAL COHERENCE TOMOGRAPHY ANGIOGRAPHY VARIABLE INTERSCAN TIME ANALYSIS [J].
Nishigori, Naomi ;
Muraoka, Yuki ;
Ishikura, Masaharu ;
Kadomoto, Shin ;
Mori, Yuki ;
Numa, Shogo ;
Murakami, Tomoaki ;
Ooto, Sotaro ;
Tsujikawa, Akitaka .
RETINA-THE JOURNAL OF RETINAL AND VITREOUS DISEASES, 2022, 42 (11) :2210-2217
[33]   Optical coherence tomography angiography evaluation of retinal and optic disc microvascular morphological characteristics in retinal vein occlusion [J].
Caliskan, Neriman Efe ;
Dogan, Mustafa ;
Caliskan, Abdullah ;
Gobeka, Hamidu Hamisi ;
Ay, Ibrahim Ethem .
PHOTODIAGNOSIS AND PHOTODYNAMIC THERAPY, 2023, 41
[34]   RELATIONSHIP BETWEEN ABNORMALITIES OF PHOTORECEPTOR MICROSTRUCTURES AND MICROVASCULAR STRUCTURES DETERMINED BY OPTICAL COHERENCE TOMOGRAPHY ANGIOGRAPHY IN EYES WITH BRANCH RETINAL VEIN OCCLUSION [J].
Ogasawara, Yasunobu ;
Iwase, Takeshi ;
Yamamoto, Kentaro ;
Ra, Eimei ;
Terasaki, Hiroko .
RETINA-THE JOURNAL OF RETINAL AND VITREOUS DISEASES, 2020, 40 (02) :350-358
[35]   Optical Coherence Tomography Angiography in Eyes with Retinal Vein Occlusion [J].
Tsai, Grace ;
Banaee, Touka ;
Conti, Felipe F. ;
Singh, Rishi P. .
JOURNAL OF OPHTHALMIC & VISION RESEARCH, 2018, 13 (03) :315-332
[36]   Optical coherence tomography angiography in retinal vein occlusions [J].
Wang, Qian ;
Chan, Szy Yann ;
Yan, Yanni ;
Yang, Jingyan ;
Zhou, Wenjia ;
Jonas, Jost B. ;
Wei, Wen Bin .
GRAEFES ARCHIVE FOR CLINICAL AND EXPERIMENTAL OPHTHALMOLOGY, 2018, 256 (09) :1615-1622
[37]   Longitudinal vasculature changes in branch retinal vein occlusion with projection-resolved optical coherence tomography angiography [J].
Kotaro Tsuboi ;
Motohiro Kamei .
Graefe's Archive for Clinical and Experimental Ophthalmology, 2019, 257 :1831-1840
[38]   Fundus Autofluorescence and Optical Coherence Tomography Findings in Branch Retinal Vein Occlusion [J].
Sekiryu, Tetsuju ;
Iida, Tomohiro ;
Sakai, Eiichi ;
Maruko, Ichiro ;
Ojima, Akira ;
Sugano, Yukinori .
JOURNAL OF OPHTHALMOLOGY, 2012, 2012
[39]   Association of disorganization of retinal inner layers with optical coherence tomography angiography features in branch retinal vein occlusion [J].
Kanai, Masanori ;
Shiozaki, Daiki ;
Sakimoto, Susumu ;
Shiraki, Akihiko ;
Hara, Chikako ;
Kawasaki, Ryo ;
Sakaguchi, Hirokazu ;
Nishida, Kohji .
GRAEFES ARCHIVE FOR CLINICAL AND EXPERIMENTAL OPHTHALMOLOGY, 2021, 259 (10) :2897-2903
[40]   Association of disorganization of retinal inner layers with optical coherence tomography angiography features in branch retinal vein occlusion [J].
Masanori Kanai ;
Daiki Shiozaki ;
Susumu Sakimoto ;
Akihiko Shiraki ;
Chikako Hara ;
Ryo Kawasaki ;
Hirokazu Sakaguchi ;
Kohji Nishida .
Graefe's Archive for Clinical and Experimental Ophthalmology, 2021, 259 :2897-2903