Motion resilience of the balanced steady-state free precession geometric solution

被引:1
作者
Hoff, Michael N. [1 ]
Xiang, Qing-San [2 ,3 ]
Cross, Nathan M. [4 ]
Hippe, Daniel [5 ]
Andre, Jalal B. [4 ]
机构
[1] Univ Calif San Francisco, Dept Radiol & Biomed Imaging, 185 Berry St,Suite 380, San Francisco, CA 94107 USA
[2] Univ British Columbia, Dept Phys & Astron, Vancouver, BC, Canada
[3] Univ British Columbia, Dept Radiol, Vancouver, BC, Canada
[4] Univ Washington, Dept Radiol, Seattle, WA 98195 USA
[5] Fred Hutchinson Canc Res Ctr, Clin Biostat, 1124 Columbia St, Seattle, WA 98104 USA
关键词
banding artifact; bSSFP imaging; linearized geometric solution; motion artifact; phase cycling; IMAGING SEQUENCES; SPIN-ECHO; PHASE; REMOVAL; MRI;
D O I
10.1002/mrm.29438
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose Many MRI sequences are sensitive to motion and its associated artifacts. The linearized geometric solution (LGS), a balanced steady-state free precession (bSSFP) off-resonance signal demodulation technique, is evaluated with respect to motion artifact resilience. Theory and Methods The mechanism and extent of LGS motion artifact resilience is examined in simulated, flow phantom, and in vivo clinical imaging. Motion artifact correction capabilities are decoupled from susceptibility artifact correction when feasible to permit controlled analysis of motion artifact correction when comparing the LGS with standard and phase-cycle-averaged (complex sum) bSSFP imaging. Results Simulations reveal that the LGS demonstrates motion artifact reduction capabilities similar to standard clinical bSSFP imaging techniques, with slightly greater resilience in high SNR regions and for shorter-duration motion. Flow phantom experiments assert that the LGS reduces shorter-duration motion artifact error by similar to 24%-65% relative to the complex sum, whereas reconstructions exhibit similar error reduction for constant motion. In vivo analysis demonstrates that in the internal auditory canal/orbits, the LGS was deemed to have less artifact in 24%/49% and similar artifact in 76%/51% of radiological assessments relative to the complex sum, and the LGS had less artifact in 97%/81% and similar artifact in 3%/16% of assessments relative to standard bSSFP. Only 2 of 63 assessments deemed the LGS inferior to either complex sum or standard bSSFP in terms of artifact reduction. Conclusion The LGS provides sufficient bSSFP motion artifact resilience to permit robust elimination of susceptibility artifacts, inspiring its use in a wide variety of applications.
引用
收藏
页码:192 / 204
页数:13
相关论文
共 50 条
  • [31] Steady-State Free Precession sequences for high and low field NMR spectroscopy in solution: Challenges and opportunities
    Moraes, Tiago Bueno
    Kock, Flavio Vinicius Crizostomo
    Salome, Kahlil Schwanka
    Barison, Andersson
    Simpson, Andre
    Colnago, Luiz Alberto
    JOURNAL OF MAGNETIC RESONANCE OPEN, 2023, 14-15
  • [32] Steady-state free precession with myocardial tagging: CSPAMM in a single breathhold
    Zwanenburg, JJM
    Kuijer, JPA
    Marcus, JT
    Heethaar, RM
    MAGNETIC RESONANCE IN MEDICINE, 2003, 49 (04) : 722 - 730
  • [33] Clinical utility of a rapid two-dimensional balanced steady-state free precession sequence with deep learning reconstruction
    Eyre, Katerina
    Rafiee, Moezedin Javad
    Leo, Margherita
    Ma, Junjie
    Hillier, Elizabeth
    Amini, Negin
    Pressacco, Josephine
    Janich, Martin A.
    Zhu, Xucheng
    Friedrich, Matthias G.
    Chetrit, Michael
    JOURNAL OF CARDIOVASCULAR MAGNETIC RESONANCE, 2024, 26 (02)
  • [34] Sensitivity and specificity of high-resolution balanced steady-state free precession fMRI at high field of 9.4 T
    Park, Sung-Hong
    Kim, Tae
    Wang, Ping
    Kim, Seong-Gi
    NEUROIMAGE, 2011, 58 (01) : 168 - 176
  • [35] Feasibility of MRI of the Fetal Heart with Balanced Steady-State Free Precession Sequence Along Fetal Body and Cardiac Planes
    Saleem, Sahar N.
    AMERICAN JOURNAL OF ROENTGENOLOGY, 2008, 191 (04) : 1208 - 1215
  • [36] In vivo bone and cartilage MRI using fully-balanced steady-state free-precession at 7 Tesla
    Krug, Roland
    Carballido-Gamio, Julio
    Banerjee, Suchandrima
    Stahl, Robert
    Carvajal, Lucas
    Xu, Duan
    Vigneron, Dan
    Kelley, Douglas A. C.
    Link, Thomas M.
    Majumdar, Sharmila
    MAGNETIC RESONANCE IN MEDICINE, 2007, 58 (06) : 1294 - 1298
  • [37] Variable Flip Angle Balanced Steady-State Free Precession for Lower SAR or Higher Contrast Cardiac Cine Imaging
    Srinivasan, Subashini
    Ennis, Daniel B.
    MAGNETIC RESONANCE IN MEDICINE, 2014, 71 (03) : 1035 - 1043
  • [38] Modeling an equivalent b-value in diffusion-weighted steady-state free precession
    Tendler, Benjamin C.
    Foxley, Sean
    Cottaar, Michiel
    Jbabdi, Saad
    Miller, Karla L.
    MAGNETIC RESONANCE IN MEDICINE, 2020, 84 (02) : 873 - 884
  • [39] Getting the phase consistent: The importance of phase description in balanced steady-state free precession MRI of multi-compartment systems
    Plahn, Nils M. J.
    Poli, Simone
    Peper, Eva S.
    Acikgoz, Berk C.
    Kreis, Roland
    Ganter, Carl
    Bastiaansen, Jessica A. M.
    MAGNETIC RESONANCE IN MEDICINE, 2024, 92 (01) : 215 - 225
  • [40] Superbalanced steady state free precession
    Bieri, Oliver
    MAGNETIC RESONANCE IN MEDICINE, 2012, 67 (05) : 1346 - 1354