Ensemble of Deep Convolutional Neural Networks for Classification of Early Barrett's Neoplasia Using Volumetric Laser Endomicroscopy

被引:17
作者
Fonolla, Roger [1 ]
Scheeve, Thom [1 ]
Struyvenberg, Maarten R. [2 ]
Curvers, Wouter L. [3 ]
de Groof, Albert J. [2 ]
van der Sommen, Fons [1 ]
Schoon, Erik J. [3 ]
Bergman, Jacques J. G. H. M. [2 ]
de With, Peter H. N. [1 ]
机构
[1] Eindhoven Univ Technol, Dept Elect Engn Video Coding & Architectures, NL-5612 AZ Eindhoven, Noord Brabant, Netherlands
[2] Univ Amsterdam, Dept Gastroenterol & Hepatol, Amsterdam UMC, NL-1105 AZ Amsterdam, Noord Brabant, Netherlands
[3] Catharina Hosp, Dept Gastroenterol & Hepatol, NL-5623 EJ Eindhoven, Noord Brabant, Netherlands
来源
APPLIED SCIENCES-BASEL | 2019年 / 9卷 / 11期
基金
欧盟地平线“2020”;
关键词
Barrett's esophagus; deep learning; volumetric laser endomicroscopy; optical coherence tomography; classification; esophageal adenocarcinoma; glands; machine learning; HIGH-GRADE DYSPLASIA; AUTOMATED SEGMENTATION; ESOPHAGEAL CANCER; IN-VIVO; MICROSCOPY; FEATURES; LESIONS; EXPERTS;
D O I
10.3390/app9112183
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Barrett's esopaghagus (BE) is a known precursor of esophageal adenocarcinoma (EAC). Patients with BE undergo regular surveillance to early detect stages of EAC. Volumetric laser endomicroscopy (VLE) is a novel technology incorporating a second-generation form of optical coherence tomography and is capable of imaging the inner tissue layers of the esophagus over a 6 cm length scan. However, interpretation of full VLE scans is still a challenge for human observers. In this work, we train an ensemble of deep convolutional neural networks to detect neoplasia in 45 BE patients, using a dataset of images acquired with VLE in a multi-center study. We achieve an area under the receiver operating characteristic curve (AUC) of 0.96 on the unseen test dataset and we compare our results with previous work done with VLE analysis, where only AUC of 0.90 was achieved via cross-validation on 18 BE patients. Our method for detecting neoplasia in BE patients facilitates future advances on patient treatment and provides clinicians with new assisting solutions to process and better understand VLE data.
引用
收藏
页数:12
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