2022
DOI: 10.1016/j.imu.2022.100918
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Canine impaction classification from panoramic dental radiographic images using deep learning models

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Cited by 23 publications
(27 citation statements)
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“…From this database, 65% of images are applied for learning and the residual 35% are applied for testing. Also, a comparative analysis is presented for proposed and existing models: HGC-CNN [23], SVM-ECOC [27], VGG16 [28], VGG19 [28], DenseNet121 [30], InceptionV3 [30], ResNet50 [30], YOLOv3 [31] and FRCNN [21] regarding precision, recall, f-measure and accuracy. The evaluation metrics are described below.…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…From this database, 65% of images are applied for learning and the residual 35% are applied for testing. Also, a comparative analysis is presented for proposed and existing models: HGC-CNN [23], SVM-ECOC [27], VGG16 [28], VGG19 [28], DenseNet121 [30], InceptionV3 [30], ResNet50 [30], YOLOv3 [31] and FRCNN [21] regarding precision, recall, f-measure and accuracy. The evaluation metrics are described below.…”
Section: Resultsmentioning
confidence: 99%
“…A range of deep learning structures like DenseNet121, VGG16, InceptionV3 and ResNet50 was recommended [30] to categorize the kind of canine impaction from panoramic dental radiographic images. But, the major drawback of this study was the limited dimension of the annotated database.…”
Section: Literature Surveymentioning
confidence: 99%
“…Majority of the studies suggest that the canine impaction prevalence was found to be more in females. [ 35 ] Some studies, however, have indicated equal frequency of impacted canines in both genders. [ 36 ] We also discovered that male and female individuals had about equal prevalence in the current investigation.…”
Section: Resultsmentioning
confidence: 99%
“…Deep learning is a subfield of machine learning that is part of artificial intelligence. [31]. Deep learning consists of several artificial neural networks that are interconnected [26], [30].…”
Section: Overview Deep Learning Algorithmmentioning
confidence: 99%
“…Deep learning consists of several artificial neural networks that are interconnected [26], [30]. Deep Learning classification or regression model delivered from the output port [30], [31]. This regression classification or model can be applied to invisible data sets for label attribute prediction [22].…”
Section: Overview Deep Learning Algorithmmentioning
confidence: 99%