作者
Malak Aljabri, Sumayh S Aljameel, Nasro Min-Allah, Jawaher Alhuthayfi, Leena Alghamdi, Nouf Alduhailan, Reem Alfehaid, Reem Alqarawi, Muhanad Alhareky, Suliman Y Shahin, Walaa Al Turki
发表日期
2022/1/1
期刊
Informatics in Medicine Unlocked
卷号
30
页码范围
100918
出版商
Elsevier
简介
Maxillary canine impaction is a condition that commonly occurs in growing individuals with malocclusion, and identifying its type is always challenging for dentists when determining whether the patient needs a surgical intervention. To avoid severe complications, it should be detected and treated as early as possible. Classifying the type of the canine impaction from panoramic dental radiograph requires precise measurements and expensive training, which is time-consuming. The automation of this procedure could support dentists’ decision-making and save time and effort. Artificial Intelligence (AI) techniques including Machine Leaning (ML) and Deep Learning (DL) allow researchers to extract useful insights from data and thus improve decision-making. In this research, we apply DL technologies to classify impacted canines based on the Yamamoto classification. Four deep learning models were developed to …
引用总数
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M Aljabri, SS Aljameel, N Min-Allah, J Alhuthayfi… - Informatics in Medicine Unlocked, 2022