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Artificial intelligence in small bowel capsule endoscopy - current status, challenges and future promise

Thumbnail
Συγγραφέας
Dray X., Iakovidis D., Houdeville C., Jover R., Diamantis D., Histace A., Koulaouzidis A.
Ημερομηνία
2021
Γλώσσα
en
DOI
10.1111/jgh.15341
Λέξη-κλειδί
anatomic landmark
Article
artificial intelligence
automation
blood
capsule endoscopy
data base
erosion
human
intestine endoscopy
medical expert
physician
prospective study
small intestine
supervised machine learning
ulcer
artificial intelligence
capsule endoscopy
enteropathy
forecasting
pathology
procedures
small intestine
Artificial Intelligence
Capsule Endoscopy
Forecasting
Humans
Intestinal Diseases
Intestine, Small
John Wiley and Sons Inc
Εμφάνιση Μεταδεδομένων
Επιτομή
Neural network-based solutions are under development to alleviate physicians from the tedious task of small-bowel capsule endoscopy reviewing. Computer-assisted detection is a critical step, aiming to reduce reading times while maintaining accuracy. Weakly supervised solutions have shown promising results; however, video-level evaluations are scarce, and no prospective studies have been conducted yet. Automated characterization (in terms of diagnosis and pertinence) by supervised machine learning solutions is the next step. It relies on large, thoroughly labeled databases, for which preliminary “ground truth” definitions by experts are of tremendous importance. Other developments are under ways, to assist physicians in localizing anatomical landmarks and findings in the small bowel, in measuring lesions, and in rating bowel cleanliness. It is still questioned whether artificial intelligence will enter the market with proprietary, built-in or plug-in software, or with a universal cloud-based service, and how it will be accepted by physicians and patients. © 2020 Journal of Gastroenterology and Hepatology Foundation and John Wiley & Sons Australia, Ltd
URI
http://hdl.handle.net/11615/71215
Collections
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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