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    • Revista IJIMAI
    • 2026
    • vol. 9, nº 6, march 2026
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    • UNIR REVISTAS
    • Revista IJIMAI
    • 2026
    • vol. 9, nº 6, march 2026
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    Multi-Class Dental CBCT Segmentation in Data- Constrained Scenarios Through Transformers

    Autor: 
    Giménez-Aguilar, Rafael C.
    ;
    Paraíso-Medina, Sergio
    ;
    García-Remesal, Miguel
    ;
    Pradíes Ramiro, Guillermo Jesús
    ;
    Bonfanti-Gris, Monica
    ;
    Alonso-Calvo, Raúl
    Fecha: 
    26/03/2026
    Palabra clave: 
    Dental CBCT; Deep Learning; Instance Segmentation; Multiclass Segmentation; Transformer
    Revista / editorial: 
    UNIR
    Citación: 
    R. C. Giménez-Aguilar, S. Paraíso-Medina, M. García-Remesal, G. J. Pradíes-Ramiro, M. Bonfanti-Gris, R. Alonso-Calvo. Multi-Class Dental CBCT Segmentation in Data-Constrained Scenarios Through Transformers, International Journal of Interactive Multimedia and Artificial Intelligence, vol. 9, no. 6, pp. 52-60, 2026, http://doi.org/10.9781/ijimai.2025.03.003
    Tipo de Ítem: 
    article
    URI: 
    https://reunir.unir.net/handle/123456789/19146
    DOI: 
    http://doi.org/10.9781/ijimai.2025.03.003
    Dirección web: 
    https://www.ijimai.org/index.php/ijimai/article/view/861
    Open Access
    Resumen:
    Accurate segmentation of dental structures from cone-beam computed tomography (CBCT) images has become an active research field due to the widespread use of this technology in clinical practice. In recent years, contributions have shifted from traditional computer vision methods to deep learning-based approaches. However, most of these works are based solely on convolutional neural networks (CNNs), whereas the image segmentation state-of-the-art is currently moving towards attention-based architectures. Furthermore, contributions on dental CBCTs predominantly present methods focused on a single object category, mainly teeth. In this article we tackle the segmentation of multiple oral structures by implementing previously unutilized query-based segmentation transformers. The proposed method achieves similar results to the stateof- the-art, especially on tooth segmentation, while employing a considerably smaller training dataset than prior contributions.
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    Nombre: Multi-Class Dental CBCT Segmentation in Data-Constrained Scenarios Through Transformers.pdf
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