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SPIRiT-Diffusion: SPIRiT-driven Score-Based Generative Modeling for Vessel Wall imaging (2212.11274v1)

Published 14 Dec 2022 in eess.IV and cs.CV

Abstract: Diffusion model is the most advanced method in image generation and has been successfully applied to MRI reconstruction. However, the existing methods do not consider the characteristics of multi-coil acquisition of MRI data. Therefore, we give a new diffusion model, called SPIRiT-Diffusion, based on the SPIRiT iterative reconstruction algorithm. Specifically, SPIRiT-Diffusion characterizes the prior distribution of coil-by-coil images by score matching and characterizes the k-space redundant prior between coils based on self-consistency. With sufficient prior constraint utilized, we achieve superior reconstruction results on the joint Intracranial and Carotid Vessel Wall imaging dataset.

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Authors (7)
  1. Chentao Cao (15 papers)
  2. Zhuo-Xu Cui (25 papers)
  3. Jing Cheng (51 papers)
  4. Sen Jia (42 papers)
  5. Hairong Zheng (71 papers)
  6. Dong Liang (154 papers)
  7. Yanjie Zhu (38 papers)
Citations (4)

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