2024
DOI: 10.1002/ajpa.24912
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Information fusion for infant age estimation from deciduous teeth using machine learning

Práxedes Martínez‐Moreno,
Andrea Valsecchi,
Sergio Damas
et al.

Abstract: ObjectivesOver the past few years, several methods have been proposed to improve the accuracy of age estimation in infants with a focus on dental development as a reliable marker. However, traditional approaches have limitations in efficiently combining information from different teeth and features. In order to address these challenges, this article presents a study on age estimation in infants with Machine Learning (ML) techniques, using deciduous teeth.Materials and MethodsThe involved dataset comprises 114 … Show more

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