Segmentation of retinal fluids and hyperreflective foci using deep learning approach in optical coherence tomography scans

Retinal diseases are a common cause of blindness around the world, early detection of clinical findings can help to avoid vision loss in patients. Optical coherence tomography images have been widely used to diagnose retinal diseases, due to the capacity to show in detail findings as drusen, hyperre...

Full description

Autores:
Gonzalez Osorio, Fabio
Perdomo Charry, Oscar Julian
Sanchez, Yeison D.
Nieto, Bernardo
Padilla, Fabio D.
Tipo de recurso:
Article of investigation
Fecha de publicación:
2020
Institución:
Escuela Colombiana de Ingeniería Julio Garavito
Repositorio:
Repositorio Institucional ECI
Idioma:
eng
OAI Identifier:
oai:repositorio.escuelaing.edu.co:001/1472
Acceso en línea:
https://repositorio.escuelaing.edu.co/handle/001/1472
https://doi.org/10.1117/12.2579934
Palabra clave:
Aprendizaje profundo - Tomografía - Coherencia óptica
Tomografía óptica
Retina
Ojos - Enfermedades - Diagnóstico
Eye - Diseases - Diagnosis
Rights
closedAccess
License
http://purl.org/coar/access_right/c_14cb
Description
Summary:Retinal diseases are a common cause of blindness around the world, early detection of clinical findings can help to avoid vision loss in patients. Optical coherence tomography images have been widely used to diagnose retinal diseases, due to the capacity to show in detail findings as drusen, hyperreflective foci, and intraretinal and subretinal fluids. The location of findings is vital to identify and follow-up the retinal disease. However, the detection and segmentation of these findings is not an easy task due to artifacts noise, and the time consuming even to experts ophthalmologist. This paper proposes a computational method based on deep learning to automatically identify fluids and hyperreflective foci as a tool to identify retinal diseases through the use of OCT images. The method was evaluated on a set of OCT images manually annotated by experts. The experimental results present a Dice coefficient of 0,4437 and 0,6245 in the segmentation task of fluids (intrarretinal fluids and subretinal fluids), and hyperreflective foci respectively.