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  3. Artificial intelligence for the analysis of intracoronary optical coherence tomography images: a systematic review.

Artificial intelligence for the analysis of intracoronary optical coherence tomography images: a systematic review.

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DOI
10.48620/86980
Publisher DOI
10.1093/ehjdh/ztaf005
PubMed ID
40110224
Abstract
Intracoronary optical coherence tomography (OCT) is a valuable tool for, among others, periprocedural guidance of percutaneous coronary revascularization and the assessment of stent failure. However, manual OCT image interpretation is challenging and time-consuming, which limits widespread clinical adoption. Automated analysis of OCT frames using artificial intelligence (AI) offers a potential solution. For example, AI can be employed for automated OCT image interpretation, plaque quantification, and clinical event prediction. Many AI models for these purposes have been proposed in recent years. However, these models have not been systematically evaluated in terms of model characteristics, performances, and bias. We performed a systematic review of AI models developed for OCT analysis to evaluate the trends and performances, including a systematic evaluation of potential sources of bias in model development and evaluation.
Date Issued
2025-03
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Subjects
Artificial intelligence
•
Coronary
•
Deep learning
•
Intravascular imaging
•
Optical coherence tomography
•
Systematic review
Language(s)
en
Author(s)
van der Waerden, Ruben G A
Volleberg, Rick H J A
Luttikholt, Thijs J
Cancian, Pierandrea
van der Zande, Joske L
Stone, Gregg W
Holm, Niels R
Kedhi, Elvin
Escaned, Javier
Pellegrini, Dario
Guagliumi, Giulio
Mehta, Shamir R
Pinilla-Echeverri, Natalia
Moreno, Raúl
Räber, Lorenz  
Clinic of Cardiology  
Roleder, Tomasz
van Ginneken, Bram
Sánchez, Clara I
Išgum, Ivana
van Royen, Niels
Thannhauser, Jos
Additional Credits
Clinic of Cardiology  
Journal
European heart journal. Digital health
ISSN
2634-3916
Access(Rights)
open.access
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