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Endoscopic Diagnosis of Eosinophilic Esophagitis Using a Multi-Task U-Net: A Pilot Study

Authors
 Kim, Ga Hee  ;  Park, Jooyoung  ;  Park, Seungju  ;  Hwang, Jeongeun  ;  Lim, Jisup  ;  Park, Kanggil  ;  Ji, Sunghwan  ;  Park, Kwangbeom  ;  Seo, Jun-young  ;  Noh, Jin Hee  ;  Ahn, Ji Yong  ;  Byeon, Jeong-Sik  ;  Kim, Do Hoon  ;  Kim, Namkug 
Citation
 YONSEI MEDICAL JOURNAL, Vol.67(2) : 112-121, 2026-02 
Journal Title
YONSEI MEDICAL JOURNAL
ISSN
 0513-5796 
Issue Date
2026-02
MeSH
Adult ; Endoscopy / methods ; Eosinophilic Esophagitis* / diagnosis ; Eosinophilic Esophagitis* / diagnostic imaging ; Esophagoscopy* / methods ; Female ; Humans ; Male ; Middle Aged ; Neural Networks, Computer* ; Pilot Projects ; ROC Curve
Keywords
Eosinophilic esophagitis ; endoscopy ; diagnosis
Abstract
Purpose: Endoscopically identifying eosinophilic esophagitis (EoE) is difficult due to its rare incidence and subtle morphology. We aimed to develop a robust and accurate convolutional neural network (CNN) model for EoE identification and classification in endoscopic images. Materials and Methods: We collected 548 endoscopic images from 81 patients with EoE and 297 images from 37 normal patients. These datasets were labeled according to the four eosinophilic esophagitis endoscopic reference score (EREFS) features: edema, rings, exudates, and furrows. A multi-task U-Net with an auxiliary classifier on various levels of skip connections (scaU-Net) was proposed. Then, scaU-Net was compared with VGG19, ResNet50, EfficientNet-B3, and a typical multi-task U-Net CNN. The performances of each model were evaluated quantitatively and qualitatively based on accuracy (ACC), area under the receiver operating characteristics (AUROC), and gradient-weighted class activation map (Grad-CAM), and were also compared with those of 25 huResults: Our sca4U-Net with 4th-level skip connection showed the best performances in ACC (86.9%), AUROC (0.93), and outstanding Grad-CAM results compared to other models, reflecting the importance of utilizing the deepest skip connection. Moreover, the sca4U-Net showed generally better performance when compared with endoscopists with various levels of experience. Conclusion: Our method showed robust performance compared to expert endoscopists and could assist endoscopists of all experience levels in the early detection of EoE-a rare but clinically important condition.
Files in This Item:
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DOI
10.3349/ymj.2024.0404
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Internal Medicine (내과학교실) > 1. Journal Papers
Yonsei Authors
Kim, Ga Hee(김가희)
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/211194
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