2022
DOI: 10.3389/fmed.2022.1018937
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Diagnostic accuracy of artificial intelligence for detecting gastrointestinal luminal pathologies: A systematic review and meta-analysis

Abstract: BackgroundArtificial Intelligence (AI) holds considerable promise for diagnostics in the field of gastroenterology. This systematic review and meta-analysis aims to assess the diagnostic accuracy of AI models compared with the gold standard of experts and histopathology for the diagnosis of various gastrointestinal (GI) luminal pathologies including polyps, neoplasms, and inflammatory bowel disease.MethodsWe searched PubMed, CINAHL, Wiley Cochrane Library, and Web of Science electronic databases to identify st… Show more

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Cited by 3 publications
(1 citation statement)
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“…AI can help in the analysis of EHRs to identify patterns in patient data that may indicate the onset of a GI disease. Machine learning algorithms can also be used to predict disease outcomes, estimate treatment efficacy, and identify potential complications 14,15 . It can be integrated into EHR systems to provide clinical decision support to healthcare providers.…”
Section: Electronic Health Records (Ehrs)mentioning
confidence: 99%
“…AI can help in the analysis of EHRs to identify patterns in patient data that may indicate the onset of a GI disease. Machine learning algorithms can also be used to predict disease outcomes, estimate treatment efficacy, and identify potential complications 14,15 . It can be integrated into EHR systems to provide clinical decision support to healthcare providers.…”
Section: Electronic Health Records (Ehrs)mentioning
confidence: 99%