Abstract

BackgroundPanoramic radiography is an imaging method for displaying maxillary and mandibular teeth together with their supporting structures. Panoramic radiography is frequently used in dental imaging due to its relatively low radiation dose, short imaging time, and low burden to the patient. We verified the diagnostic performance of an artificial intelligence (AI) system based on a deep convolutional neural network method to detect and number teeth on panoramic radiographs.MethodsThe data set included 2482 anonymized panoramic radiographs from adults from the archive of Eskisehir Osmangazi University, Faculty of Dentistry, Department of Oral and Maxillofacial Radiology. A Faster R-CNN Inception v2 model was used to develop an AI algorithm (CranioCatch, Eskisehir, Turkey) to automatically detect and number teeth on panoramic radiographs. Human observation and AI methods were compared on a test data set consisting of 249 panoramic radiographs. True positive, false positive, and false negative rates were calculated for each quadrant of the jaws. The sensitivity, precision, and F-measure values were estimated using a confusion matrix.ResultsThe total numbers of true positive, false positive, and false negative results were 6940, 250, and 320 for all quadrants, respectively. Consequently, the estimated sensitivity, precision, and F-measure were 0.9559, 0.9652, and 0.9606, respectively.ConclusionsThe deep convolutional neural network system was successful in detecting and numbering teeth. Clinicians can use AI systems to detect and number teeth on panoramic radiographs, which may eventually replace evaluation by human observers and support decision making.

Highlights

  • Panoramic radiography is an imaging method for displaying maxillary and mandibular teeth together with their supporting structures

  • Panoramic radiography is a method for producing a single tomographic image of the facial structures that includes both the maxillary and mandibular dental teeth and their supporting structures

  • The deep learning approach has been elaborated to improve the performance of traditional artificial neural networks (ANNs) using complex architectures

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Summary

Introduction

Panoramic radiography is an imaging method for displaying maxillary and mandibular teeth together with their supporting structures. We verified the diagnostic performance of an artificial intelligence (AI) system based on a deep convolutional neural network method to detect and number teeth on panoramic radiographs. Panoramic radiography is a method for producing a single tomographic image of the facial structures that includes both the maxillary and mandibular dental teeth and their supporting structures. The deep learning approach has been elaborated to improve the performance of traditional artificial neural networks (ANNs) using complex architectures. Multiple layers of algorithms are classified into conjunct and important hierarchies to provide meaningful data. ANNs should be trained using educational data sets in which the initial image data sets should be manually tagged by the algorithm to suit the ground truth [3, 6, 7]

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