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Synthesis of coronary 4D CT Image by denoising diffusion probabilistic model

Authors
 Han, Tae Ho  ;  Kim, Young Woo  ;  Lee, Hyeong Jun  ;  Kim, Jung-Sun  ;  Lee, Seul-Gee  ;  Yang, Dong Hyun  ;  Oh, Hong Min  ;  Kim, Doosang  ;  Shin, Seung Yong  ;  Song, Simon  ;  Lee, Joon Sang 
Citation
 COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, Vol.282, 2026-08 
Article Number
 109382 
Journal Title
COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE
ISSN
 0169-2607 
Issue Date
2026-08
MeSH
Algorithms ; Coronary Artery Disease* / diagnostic imaging ; Diffusion ; Four-Dimensional Computed Tomography* / methods ; Hemodynamics ; Humans ; Hydrodynamics ; Imaging, Three-Dimensional ; Models, Statistical* ; Signal-To-Noise Ratio
Keywords
Computed tomography ; Medical image synthesis ; Denoising diffusion probabilistic model ; Hemodynamic modeling ; Quasi-steady fluid-structure interaction
Abstract
Purpose: Fluctuations in the pressure drop during the cardiac cycle can provide prognostic information for coronary artery disease (CAD). However, 4D computed tomography (CT) is required for time-variant flow analysis, which results in high doses of radiation exposure. In this study, we propose a novel diffusion-based framework for synthesizing physiologically consistent 4D CT images and performing 4D CT flow analysis. Methods: A denoising diffusion probabilistic model (DDPM) integrated with a deformation module was used for precise anatomical reconstruction. Subsequently, a computational fluid dynamics (CFD) model coupled with quasi-steady fluid-structure interaction (FSI) was utilized to calculate the 4D hemodynamic flow field. Results: The model achieved a peak signal-to-noise ratio of 32.01 and a structural similarity index measure of 0.937. After 3D construction and segmentation, the average Dice coefficient was 0.973. Furthermore, the computational fluid analysis was also performed with a fractional flow reserve (FFR) accuracy of 90.5%, demonstrating its efficacy in reducing radiation exposure without compromising diagnostic quality. Conclusion: Our results demonstrate that this synthesized 4D CT-based hemodynamic approach provides timevariant information for CAD diagnosis. This method offers valuable guidance for clinical decision-making as well as the possibility of prognostic information based on dynamic lumen evaluation.
Full Text
https://www.sciencedirect.com/science/article/pii/S0169260726001471
DOI
10.1016/j.cmpb.2026.109382
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Internal Medicine (내과학교실) > 1. Journal Papers
1. College of Medicine (의과대학) > Yonsei Biomedical Research Center (연세의생명연구원) > 1. Journal Papers
Yonsei Authors
Kim, Jung Sun(김중선) ORCID logo https://orcid.org/0000-0003-2263-3274
Lee, Seul-Gee(이슬기)
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/212553
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