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Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy

BACKGROUND AND AIMS: There has been an increasing role of artificial intelligence (AI) in the characterization of colorectal polyps. Recently, a novel AI algorithm for the characterization of polyps was developed by NEC Corporation (Japan). The aim of our study is to perform an external validation o...

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Autores principales: Hossain, Ejaz, Abdelrahim, Mohamed, Tanasescu, Andrea, Yamada, Masayoshi, Kondo, Hiroko, Yamada, Shijemi, Hamamoto, Ryuji, Marugame, Atsushi, Saito, Yutaka, Bhandari, Pradeep
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9614381/
https://www.ncbi.nlm.nih.gov/pubmed/36320934
http://dx.doi.org/10.1002/deo2.178
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author Hossain, Ejaz
Abdelrahim, Mohamed
Tanasescu, Andrea
Yamada, Masayoshi
Kondo, Hiroko
Yamada, Shijemi
Hamamoto, Ryuji
Marugame, Atsushi
Saito, Yutaka
Bhandari, Pradeep
author_facet Hossain, Ejaz
Abdelrahim, Mohamed
Tanasescu, Andrea
Yamada, Masayoshi
Kondo, Hiroko
Yamada, Shijemi
Hamamoto, Ryuji
Marugame, Atsushi
Saito, Yutaka
Bhandari, Pradeep
author_sort Hossain, Ejaz
collection PubMed
description BACKGROUND AND AIMS: There has been an increasing role of artificial intelligence (AI) in the characterization of colorectal polyps. Recently, a novel AI algorithm for the characterization of polyps was developed by NEC Corporation (Japan). The aim of our study is to perform an external validation of this algorithm. METHODS: The study was a video‐based evaluation of the computer‐aided diagnosis (CADx) system. Patients undergoing colonoscopy were recruited to record videos of colonic polyps. The frozen polyp images extracted from these videos were used for real‐time histological prediction by the endoscopists and by the CADx system, and the results were compared. RESULTS: A total of 115 polyp images were extracted from 66 patients. Sensitivity, negative predictive value and accuracy for diminutive polyps on white light imaging (WLI) and image‐enhanced endoscopy (IEE) when assessed by CADx was 90.9% [95% confidence interval (CI) 77.3–100] and 95.8% [95% CI 87.5–100], 80% [95% CI 44.4–97.5] and 90.9% [95% CI 58.7–99.8], 84.8% [95% CI 72.7‐97] and 84.6% [95%CI 71.8‐94.9], respectively, compared to 48.1% [95%CI 37.7–59.1] and 72% [95% CI 62.5–81], 37.5% [95% CI 28.8–46.8] and 55% [95% CI 44.7–65.0], 53.7% [95% CI 44.2–63.2] and 66.7% [95% CI 59.7–73.3] when assessed by endoscopists. Concordance between histology and CADx‐based post‐polypectomy surveillance intervals was 93.02% on WLI and 96% on IEE. CONCLUSION: AI‐based optical diagnosis is promising and has the potential to be better than the performance of general endoscopists. We believe that AI can help make real‐time optical diagnoses of polyps meeting the Preservation and Incorporation of Valuable endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy.
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spelling pubmed-96143812022-10-31 Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy Hossain, Ejaz Abdelrahim, Mohamed Tanasescu, Andrea Yamada, Masayoshi Kondo, Hiroko Yamada, Shijemi Hamamoto, Ryuji Marugame, Atsushi Saito, Yutaka Bhandari, Pradeep DEN Open Original Articles BACKGROUND AND AIMS: There has been an increasing role of artificial intelligence (AI) in the characterization of colorectal polyps. Recently, a novel AI algorithm for the characterization of polyps was developed by NEC Corporation (Japan). The aim of our study is to perform an external validation of this algorithm. METHODS: The study was a video‐based evaluation of the computer‐aided diagnosis (CADx) system. Patients undergoing colonoscopy were recruited to record videos of colonic polyps. The frozen polyp images extracted from these videos were used for real‐time histological prediction by the endoscopists and by the CADx system, and the results were compared. RESULTS: A total of 115 polyp images were extracted from 66 patients. Sensitivity, negative predictive value and accuracy for diminutive polyps on white light imaging (WLI) and image‐enhanced endoscopy (IEE) when assessed by CADx was 90.9% [95% confidence interval (CI) 77.3–100] and 95.8% [95% CI 87.5–100], 80% [95% CI 44.4–97.5] and 90.9% [95% CI 58.7–99.8], 84.8% [95% CI 72.7‐97] and 84.6% [95%CI 71.8‐94.9], respectively, compared to 48.1% [95%CI 37.7–59.1] and 72% [95% CI 62.5–81], 37.5% [95% CI 28.8–46.8] and 55% [95% CI 44.7–65.0], 53.7% [95% CI 44.2–63.2] and 66.7% [95% CI 59.7–73.3] when assessed by endoscopists. Concordance between histology and CADx‐based post‐polypectomy surveillance intervals was 93.02% on WLI and 96% on IEE. CONCLUSION: AI‐based optical diagnosis is promising and has the potential to be better than the performance of general endoscopists. We believe that AI can help make real‐time optical diagnoses of polyps meeting the Preservation and Incorporation of Valuable endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy. John Wiley and Sons Inc. 2022-10-28 /pmc/articles/PMC9614381/ /pubmed/36320934 http://dx.doi.org/10.1002/deo2.178 Text en © 2022 The Authors. DEN Open published by John Wiley & Sons Australia, Ltd on behalf of Japan Gastroenterological Endoscopy Society. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Hossain, Ejaz
Abdelrahim, Mohamed
Tanasescu, Andrea
Yamada, Masayoshi
Kondo, Hiroko
Yamada, Shijemi
Hamamoto, Ryuji
Marugame, Atsushi
Saito, Yutaka
Bhandari, Pradeep
Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title_full Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title_fullStr Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title_full_unstemmed Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title_short Performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting Preservation and Incorporation of Valuable Endoscopic Innovations standards set by the American Society of Gastrointestinal Endoscopy
title_sort performance of a novel computer‐aided diagnosis system in the characterization of colorectal polyps, and its role in meeting preservation and incorporation of valuable endoscopic innovations standards set by the american society of gastrointestinal endoscopy
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9614381/
https://www.ncbi.nlm.nih.gov/pubmed/36320934
http://dx.doi.org/10.1002/deo2.178
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