Title :
Sparsity-Enforced Slice-Selective MRI RF Excitation Pulse Design
Author :
Zelinski, Adam C. ; Wald, Lawrence L. ; Setsompop, Kawin ; Goyal, Vivek K. ; Adalsteinsson, Elfar
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Massachusetts Inst. of Technol. (MIT), Cambridge, MA
Abstract :
We introduce a novel algorithm for the design of fast slice-selective spatially-tailored magnetic resonance imaging (MRI) excitation pulses. This method, based on sparse approximation theory, uses a second-order cone optimization to place and modulate a small number of slice-selective sine-like radio-frequency (RF) pulse segments ("spokes") in excitation fc-space, enforcing sparsity on the number of spokes allowed while si multaneously encouraging those that remain to be placed and modulated in a way that best forms a user-defined in-plane target magnetization. Pulses are designed to mitigate B1 inhomogeneity in a water phantom at 7 T and to produce highly-structured excitations in an oil phantom on an eight-channel parallel excitation system at 3 T. In each experiment, pulses generated by the spar- sity-enfoldquoced method outperform those created via conventional Fourier-based techniques, e.g., when attempting to produce a uniform magnetization in the presence of severe B1 inhomogeneity, a 5.7-ms 15-spoke pulse generated by the sparsity-enforced method produces an excitation with 1.28 times lower root mean square error than conventionally-designed 15-spoke pulses. To achieve this same level of uniformity, the conventional methods need to use 29-spoke pulses that are 7.8 ms long.
Keywords :
biomedical MRI; phantoms; Fourier-based techniques; RF excitation pulse design; algorithm; magnetic resonance imaging; magnetization; phantom; root mean square error; sparsity-enforced slice-selective MRI; Algorithm design and analysis; Approximation methods; Imaging phantoms; Magnetic modulators; Magnetic resonance imaging; Magnetization; Optimization methods; Pulse generation; Pulse modulation; Radio frequency; 3-D RF excitation; $B_{1}$ inhomogeneity mitigation; B1; MRI RF pulse sequence design; high field strength; inhomogeneity mitigation; magnetic resonance imaging (MRI) radio-frequency (RF) pulse sequence design; parallel transmission; sparse approximation; three-dimensional (3-D) RF excitation; Algorithms; Brain; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Magnetic Resonance Imaging; Signal Processing, Computer-Assisted;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2008.920605