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Use of artificial intelligence in improving adenoma detection rate during colonoscopy: Might both endoscopists and pathologists be further helped
- Source :
- World Journal of Gastroenterology
- Publication Year :
- 2020
-
Abstract
- Colonoscopy remains the standard strategy for screening for colorectal cancer around the world due to its efficacy in both detecting adenomatous or pre-cancerous lesions and the capacity to remove them intra-procedurally. Computer-aided detection and diagnosis (CAD), thanks to the brand new developed innovations of artificial intelligence, and especially deep-learning techniques, leads to a promising solution to human biases in performance by guarantying decision support during colonoscopy. The application of CAD on real-time colonoscopy helps increasing the adenoma detection rate, and therefore contributes to reduce the incidence of interval cancers improving the effectiveness of colonoscopy screening on critical outcome such as colorectal cancer related mortality. Furthermore, a significant reduction in costs is also expected. In addition, the assistance of the machine will lead to a reduction of the examination time and therefore an optimization of the endoscopic schedule. The aim of this opinion review is to analyze the clinical applications of CAD and artificial intelligence in colonoscopy, as it is reported in literature, addressing evidence, limitations, and future prospects.
- Subjects :
- Adenoma
Opinion Review
Decision support system
Artificial intelligence
Colorectal cancer
Colonoscopy
Colonic Polyps
CAD
Computer-aided detection and diagnosis
03 medical and health sciences
0302 clinical medicine
medicine
Pathology
Humans
Diagnosis, Computer-Assisted
medicine.diagnostic_test
business.industry
Gastroenterology
Endoscopy
General Medicine
medicine.disease
Pathologists
030220 oncology & carcinogenesis
030211 gastroenterology & hepatology
Detection rate
business
Colorectal Neoplasms
Adenoma detection rate
Subjects
Details
- ISSN :
- 22192840
- Volume :
- 26
- Issue :
- 39
- Database :
- OpenAIRE
- Journal :
- World journal of gastroenterology
- Accession number :
- edsair.doi.dedup.....93d7c8506e8642f3b5ac2fc53f4ef535