2019
DOI: 10.1371/journal.pone.0211579
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Correction: A deep learning model for the detection of both advanced and early glaucoma using fundus photography

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Cited by 13 publications
(6 citation statements)
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“…However, both the SSM and ARS methods exhibit a limitation in dealing with new forms of data beyond the predefined standard since they depend on prior knowledge or other preprocessing techniques 16 – 18 . Recently, deep learning methods have been widely used for the detection 19 21 , classification 22 24 , segmentation 25 , 26 , and enhancement 27 , 28 of medical and dental images. Several convolutional neural networks (CNN) such as 3D U-Net, a type of deep learning method, were used for MC segmentation in CBCT images exhibiting a high accuracy of segmentation 10 , 14 .…”
Section: Introductionmentioning
confidence: 99%
“…However, both the SSM and ARS methods exhibit a limitation in dealing with new forms of data beyond the predefined standard since they depend on prior knowledge or other preprocessing techniques 16 – 18 . Recently, deep learning methods have been widely used for the detection 19 21 , classification 22 24 , segmentation 25 , 26 , and enhancement 27 , 28 of medical and dental images. Several convolutional neural networks (CNN) such as 3D U-Net, a type of deep learning method, were used for MC segmentation in CBCT images exhibiting a high accuracy of segmentation 10 , 14 .…”
Section: Introductionmentioning
confidence: 99%
“…Therefore, AlexNet or GoogLeNet have seen widespread usage in medical analysis. 19,20 A GoogLeNet module called Inception V3 has also recently been utilized in image analysis. Examples of anatomical area analysis for which deep learning has been applied include the brain, eyes, chest, breast, cardiac, abdomen, digital pathology and microscopy, and musculoskeletal system, in which predictive accuracy is high.…”
Section: Discussionmentioning
confidence: 99%
“…The residual neural network (ResNet) architecture is an improved form of the CNN model 116 and ResNet50 is a 50-layer neural network-based model employing a scheme of skip links between layers, known as residual learning and trained on the ImageNet dataset. 89 InceptionV3, 117 one kind of CNN model that contains a fully connected neural network, improves the use of manipulated resources inside the network. The Xception 118 CNN model developed by Google was an updated form of the Inception model.…”
Section: Artificial Intelligence Approaches In Health Carementioning
confidence: 99%