| Literature DB >> 32562456 |
Steen Moeller1, Pramod Pisharady Kumar1, Jesper Andersson2, Mehmet Akcakaya1,3, Noam Harel1, Ruoyun Emily Ma1, Xiaoping Wu1, Essa Yacoub1, Christophe Lenglet1, Kamil Ugurbil1.
Abstract
Diffusion imaging is a critical component in the pursuit of developing a better understanding of the human brain. Recent technical advances promise enabling the advancement in the quality of data that can be obtained. In this review the context for different approaches relative to the Human Connectome Project are compared. Significant new gains are anticipated from the use of high-performance head gradients. These gains can be particularly large when the high-performance gradients are employed together with ultrahigh magnetic fields. Transmit array designs are critical in realizing high accelerations in diffusion-weighted (d)MRI acquisitions, while maintaining large field of view (FOV) coverage, and several techniques for optimal signal-encoding are now available. Reconstruction and processing pipelines that precisely disentangle the acquired neuroanatomical information are established and provide the foundation for the application of deep learning in the advancement of dMRI for complex tissues. Level of Evidence: 3 Technical Efficacy Stage: Stage 3.Entities:
Keywords: diffusion imaging; human connectome project; ultra high field
Mesh:
Year: 2020 PMID: 32562456 PMCID: PMC8647969 DOI: 10.1002/jmri.27247
Source DB: PubMed Journal: J Magn Reson Imaging ISSN: 1053-1807 Impact factor: 5.119