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Real Time Computer-aided Diagnosis (CADx) of Diminutive Colorectal Polyps Using Artificial Intelligence
Correct endoscopic prediction of the histopathology and differentiation between benign, pre-malignant, and malignant colorectal polyps (optical diagnosis) remains difficult. Artificial intelligence has great potential in image analysis in gastrointestinal endoscopy. Aim of this study is to investigate the real-time diagnostic performance of AI4CRP for the classification of diminutive colorectal polyps, and to compare it with the real-time diagnostic performance of commercially available CADx systems.
Correct endoscopic prediction of the histopathology and differentiation between benign, pre-malignant, and malignant colorectal polyps (optical diagnosis) remains difficult. Despite additional training, even experienced endoscopists continue to fail meeting international thresholds set for safe implementation of treatment strategies based on optical diagnosis. Multiple machine learning techniques - computer-aided diagnosis (CADx) systems - have been developed for applications in medical imaging within colonoscopy and can improve endoscopic classification of colorectal polyps. Aim of this study is to explore the feasibility of the workflow using AI4CRP (a CNN based CADx system) real-time in the endoscopy suite, and to investigate the real-time diagnostic performance of AI4CRP for the diagnosis of diminutive (\<5mm) colorectal polyps. Secondary, the real-time performance of commercially available CADx systems will be investigated and compared with AI4CRP performance.
Age
18 - No limit years
Sex
ALL
Healthy Volunteers
No
Maastricht University Medical Center
Maastricht, Limburg, Netherlands
Catharina Ziekenhuis Eindhoven
Eindhoven, North Brabant, Netherlands
Start Date
August 20, 2021
Primary Completion Date
September 1, 2022
Completion Date
December 1, 2022
Last Updated
May 5, 2022
105
ESTIMATED participants
Computer-aided diagnosis (CADx) systems
DEVICE
Lead Sponsor
Maastricht University Medical Center
Collaborators
NCT06662786
NCT06663319
Data Source & Attribution
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View ClinicalTrials.gov Terms and ConditionsNCT05239741