AI-assisted radiographic identification of original vs. replica dental implants: comparing accuracy of human experts vs. probabilistic and deterministic AI
Mark K. Bremer, Maximilian Blume, Samir Abou-Ayash, Muhammad Naseer Bajwa, Sheraz Ahmed, Jochen Hardt, Katja Petrowski, Monika Bjelopavlovic

TL;DR
AI models can accurately distinguish original and replica dental implants from radiographs, sometimes outperforming human experts.
Contribution
The study introduces probabilistic and deterministic AI models for identifying dental implant replicas with high accuracy.
Findings
Deterministic AI models trained with more radiographs achieved over 90% accuracy in identifying implants.
A probabilistic AI model with 28 classifiers achieved perfect accuracy on the test dataset.
Dental professionals achieved 86.16% accuracy, outperformed by some AI models.
Abstract
In dental implantology, the application of artificial intelligence (AI) for the differentiation of various implant systems is gaining increasing importance. This study investigates the feasibility of distinguishing between two highly similar implant (original implant and its replica) systems using an automated, AI-based recognition software. A dataset of 906 radiographic images was initially compiled, consisting of standardized ex situ recordings of both the original and the replica implants (with and without a cover screw in situ). Four deterministic AI-models and one probabilistic model were trained using different subsets of varying sizes of the dataset, including the full dataset and then evaluated against a designated test dataset. For comparison, 28 dental professionals also assessed the same test dataset. The accuracy of the deterministic model trained solely with 488…
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Taxonomy
TopicsDental Radiography and Imaging · Dental Implant Techniques and Outcomes · Scientific and Engineering Research Topics
