Automated corneal endothelium image segmentation in the presence of cornea guttata via convolutional neural networks

被引:5
作者
Sierra, Juan S. [1 ]
Pineda, Jesus [1 ,2 ]
Viteri, Eduardo [3 ,4 ,5 ]
Rueda, Daniela [3 ,4 ,5 ]
Tibaduiza, Beatriz [3 ,4 ,5 ]
Berrospi, Ruben D. [3 ,4 ,5 ]
Tello, Alejandro [3 ,4 ,5 ]
Galvis, Virgilio [3 ,4 ,5 ]
Volpe, Giovanni [2 ]
Millan, Maria S. [6 ]
Romero, Lenny A. [7 ]
Marrugo, Andres G. [1 ]
机构
[1] Univ Tecnol Bolivar, Fac Ingn, Cartagena, Colombia
[2] Univ Gothenburg, Dept Phys, SE-41296 Gothenburg, Sweden
[3] Ctr Oftalmol Virgilio Galvis, Floridablanca, Colombia
[4] Fdn Oftalmol Santander FOSCAL, Floridablanca, Colombia
[5] Univ Autonoma Bucaramanga UNAB, Fac Salud, Bucaramanga, Colombia
[6] Univ Politecn Cataluna, Dept Opt & Optometr, Terrassa, Spain
[7] Univ Tecnol Bolivar, Fac Ciencias Basicas, Cartagena, Colombia
来源
APPLICATIONS OF MACHINE LEARNING 2020 | 2020年 / 11511卷
关键词
corneal endothelium; specular microscopy; convolutional neural network; u-net; cornea guttata; medical image segmentation; SYSTEM;
D O I
10.1117/12.2569258
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Automated cell counting in in-vivo specular microscopy images is challenging, especially in situations where single-cell segmentation methods fail due to pathological conditions. This work aims to obtain reliable cell segmentation from specular microscopy images of both healthy and pathological corneas. We cast the problem of cell segmentation as a supervised multi-class segmentation problem. The goal is to learn a mapping relation between an input specular microscopy image and its labeled counterpart, indicating healthy (cells) and pathological regions (e.g., guttae). We trained a U-net model by extracting 96 x 96 pixel patches from corneal endothelial cell images and the corresponding manual segmentation by a physician. Encouraging results show that the proposed method can deliver reliable feature segmentation enabling more accurate cell density estimations for assessing the state of the cornea.
引用
收藏
页数:6
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