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PMID: 36034105 Published · ppublish English Journal Article

Semi-automatic Co-Registration of 3D CFD Vascular Geometry to 1000 FPS High-Speed Angiographic (HSA) Projection Images for Flow Determination Comparisons.

Proceedings of SPIE--the International Society for Optical Engineering ·Vol. 12036 ·2022-00-00

Chudzik M, Williams K, Shields A, Nagesh SS, Paccione E, Bednarek DR, Rudin S, Ionita CN

Abstract

Image co-registration is an important tool that is commonly used to quantitatively or qualitatively compare information from images or data sets that vary in time, origin, etc. This research proposes a method for the semi-automatic co-registration of the 3D vascular geometry of an intracranial aneurysm to novel high-speed angiographic (HSA) 1000 fps projection images. Using the software Tecplot 360, 3D velocimetry data generated from computational fluid dynamics (CFD) for patient-specific vasculature models can be extracted and uploaded into Python. Dilation, translation, and angular rotation of the 3D velocimetry data can then be performed in order to co-register its geometry to corresponding 2D HSA projection images of the 3D printed vascular model. Once the 3D CFD velocimetry data is geometrically aligned, a 2D velocimetry plot can be generated and the Sørensen-Dice coefficient can be calculated in order to determine the success of the co-registration process. The co-registration process was performed ten times for two different vascular models and had an average Sørensen-Dice coefficient of 0.84 ± 0.02. The method presented in this research allows for a direct comparison between 3D CFD velocimetry data and in-vitro 2D velocimetry methods. From the 3D CFD, we can compare various flow characteristics in addition to velocimetry data with HSA-derived flow metrics. The method is robust to other vascular geometries as well.

Keywords
1000 fps High-Speed Angiography Aneurysm Co-Registration Computational Fluid Dynamics Tecplot 360
作者与单位
共 8 位作者,点击展开单位 / ORCID
Chudzik Mitchell
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Williams Kyle
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Shields Allison
University at Buffalo, Department of Radiology, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Nagesh Sv Setlur
University at Buffalo, Department of Radiology, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Paccione Eric
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Bednarek Daniel R
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | University at Buffalo, Department of Radiology, Buffalo, NY 14228. | University at Buffalo, Department of Neurosurgery, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Rudin Stephen
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | University at Buffalo, Department of Radiology, Buffalo, NY 14228. | University at Buffalo, Department of Neurosurgery, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Ionita Ciprian N
University at Buffalo, Department of Biomedical Engineering, Buffalo, NY 14228. | University at Buffalo, Department of Radiology, Buffalo, NY 14228. | University at Buffalo, Department of Neurosurgery, Buffalo, NY 14228. | Canon Stroke and Vascular Research Center, Buffalo, NY 14208.
Article Info
Journal
Proceedings of SPIE--the International Society for Optical Engineering
Abbr.
Proc SPIE Int Soc Opt Eng
ISSN
0277-786X
Published
2022-00-00
电子出版
2022-00-04
Language
English
Country/Region
United States
NLM ID
101524122
基金资助
NIBIB NIH HHS · R01 EB030092 · United States
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