2023
DOI: 10.1111/aej.12822
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Detection of the separated endodontic instrument on periapical radiographs using a deep learning‐based convolutional neural network algorithm

Yağız Özbay,
Buse Yaren Kazangirler,
Caner Özcan
et al.

Abstract: The study evaluated the diagnostic performance of an artificial intelligence system to detect separated endodontic instruments on periapical radiograph radiographs. Three hundred seven periapical radiographs were collected and divided into 222 for training and 85 for testing to be fed to the Mask R‐CNN model. Periapical radiographs were assigned to the training and test set and labelled on the DentiAssist labeling platform. Labelled polygonal objects had their bounding boxes automatically generated by the Dent… Show more

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