Koundinyan et al., 2023 - Google Patents
High-resolution, respiratory-resolved coronary MRA using a Phyllotaxis-reordered variable-density 3D cones trajectoryKoundinyan et al., 2023
View PDF- Document ID
- 14352323131907735822
- Author
- Koundinyan S
- Baron C
- Malavé M
- Ong F
- Addy N
- Cheng J
- Yang P
- Hu B
- Nishimura D
- Publication year
- Publication venue
- Magnetic resonance imaging
External Links
Snippet
Purpose To develop a respiratory-resolved motion-compensation method for free-breathing, high-resolution coronary magnetic resonance angiography (CMRA) using a 3D cones trajectory. Methods To achieve respiratory-resolved 0.98 mm resolution images in a …
- 230000000241 respiratory 0 abstract description 42
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