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Deep neural networks for evaluation of specular microscopy images of the corneal endothelium with Fuchs’ dystrophy

  • Sergio Sanchez
  • , Kevin Mendoza
  • , Fernando Quintero
  • , Angélica M. Prada
  • , Alejandro Tello
  • , Virgilio Galvis
  • , Lenny A. Romero
  • , Andres G. Marrugo

Producción científica: Libro / Capitulo del libro / InformeLibros de Investigaciónrevisión exhaustiva

1 Cita (Scopus)

Resumen

Corneal endothelium assessment is carried out via specular microscopy imaging. However, automated image analysis often fails due to inadequate image quality conditions or the presence of dark regions in pathologies such as Fuchs’ dystrophy. Therefore, an early reliable image classification strategy is required before automated evaluation based on cell segmentation. Moreover, conventional classification approaches rely on manually labeled data which are difficult to obtain. We propose a two-stage semi-supervised classification algorithm, feature detection and prediction of a blurring level and guttae severity that allows us to cluster images based on the degree of segmentation complexity. For validation, we developed a web-based annotation application and surveyed a pair of expert ophthalmologists for grading a portion of the 1169 images. Preliminary results show that this approach provides a reliable and fast approach for corneal endothelial cell (CEC) image classification.

Idioma originalInglés
Título de la publicación alojadaPattern Recognition and Tracking XXXIV
EditoresMohammad S. Alam, Vijayan K. Asari
EditorialSPIE
ISBN (versión digital)9781510661684
DOI
EstadoPublicada - 2023
EventoPattern Recognition and Tracking XXXIV 2023 - Orlando, Estados Unidos
Duración: 3 may 20234 may 2023

Serie de la publicación

NombreProceedings of SPIE - The International Society for Optical Engineering
Volumen12527
ISSN (versión impresa)0277-786X
ISSN (versión digital)1996-756X

Conferencia

ConferenciaPattern Recognition and Tracking XXXIV 2023
País/TerritorioEstados Unidos
CiudadOrlando
Período3/05/234/05/23

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