A125 DIAGNOSTIC ACCURACY OF ARTIFICIAL INTELLIGENCE IN THE DIAGNOSIS OF INTESTINAL METAPLASIA AND DYSPLASIA IN PATIENTS WITH BARRETT'S ESOPHAGUS: A DIAGNOSTIC TEST ACCURACY META-ANALYSIS
K Dadgar, L Mais, S Sangar, M Yaghoobi

TL;DR
This study evaluates how well artificial intelligence can detect intestinal metaplasia and dysplasia in Barrett's Esophagus patients using endoscopic images.
Contribution
The study provides a meta-analysis of AI diagnostic accuracy for intestinal metaplasia and dysplasia in Barrett's Esophagus.
Findings
AI had a sensitivity of 0.92 and specificity of 0.84 for detecting dysplasia in endoscopic images.
AI showed a diagnostic odds ratio of 59 for dysplasia detection in gastroscopy images.
Subgroup analyses found no significant differences in AI accuracy based on geographic region or publication year.
Abstract
Diagnosing dysplasia in patients with Barrett’s Esophagus is crucial in preventing esophageal cancer but challenging in clinical practice. Artificial Intelligence (AI) could potentially be utilized during endoscopy to provide better diagnostic accuracy. The primary aim of this systematic review is to determine the diagnostic accuracy of AI in detecting intestinal metaplasia and dysplasia in adults with Barrett's esophagus using gastroscopy images. A comprehensive electronic search was conducted of cross-sectional studies examining the accuracy of AI in diagnosing intestinal metaplasia or dysplasia using endoscopic images. Study selection, data extraction and quality assessment were completed by two authors independently. When a study used several models, the model with the highest sensitivity was used in meta-analysis. The Quality Assessment of Diagnostic Accuracy (QUADAS-2) tool was…
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Taxonomy
TopicsEsophageal Cancer Research and Treatment · Gastric Cancer Management and Outcomes · Gastrointestinal Tumor Research and Treatment
