• DocumentCode
    1452383
  • Title

    GPU-Accelerated FDTD Modeling of Radio-Frequency Field–Tissue Interactions in High-Field MRI

  • Author

    Chi, Jieru ; Liu, Feng ; Weber, Ewald ; Li, Yu ; Crozier, Stuart

  • Author_Institution
    Sch. of Autom. Eng., Qingdao Univ., Qingdao, China
  • Volume
    58
  • Issue
    6
  • fYear
    2011
  • fDate
    6/1/2011 12:00:00 AM
  • Firstpage
    1789
  • Lastpage
    1796
  • Abstract
    The analysis of high-field RF field-tissue interactions requires high-performance finite-difference time-domain (FDTD) computing. Conventional CPU-based FDTD calculations offer limited computing performance in a PC environment. This study presents a graphics processing unit (GPU)-based parallel-computing framework, producing substantially boosted computing efficiency (with a two-order speedup factor) at a PC-level cost. Specific details of implementing the FDTD method on a GPU architecture have been presented and the new computational strategy has been successfully applied to the design of a novel 8-element transceive RF coil system at 9.4 T. Facilitated by the powerful GPU-FDTD computing, the new RF coil array offers optimized fields (averaging 25% improvement in sensitivity, and 20% reduction in loop coupling compared with conventional array structures of the same size) for small animal imaging with a robust RF configuration. The GPU-enabled acceleration paves the way for FDTD to be applied for both detailed forward modeling and inverse design of MRI coils, which were previously impractical.
  • Keywords
    biological tissues; biomedical MRI; cellular biophysics; coils; finite difference time-domain analysis; medical computing; 8-element transceive RF coil system; GPU-accelerated FDTD modeling; MRI coils; conventional CPU-based FDTD calculations; graphics processing unit; high-field MRI; high-field RF field-tissue interactions; high-performance finite-difference time-domain computing; parallel-computing framework; robust RF configuration; small animal imaging; substantially boosted computing efficiency; Coils; Computational modeling; Finite difference methods; Graphics processing unit; Magnetic resonance imaging; Radio frequency; Time domain analysis; Finite-difference time-domain (FDTD); MRI; RF coil; graphics processing unit (GPU); high-field; parallel computing; Algorithms; Animals; Computer Graphics; Computer Simulation; Image Processing, Computer-Assisted; Magnetic Resonance Imaging; Models, Theoretical; Rats;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2011.2116020
  • Filename
    5714720