Roujol, Tan A, Anter, Josephson M, Nezafat. Towards cardiac and respiratory motion characterization from electrophysiology data for improved real time MR-integration. Journal of Cardiovascular Magnetic Resonance 15(Suppl 1) P68. 2013.
Publications
2013
Roujol, Basha T, Tan A, Anter, Buxton A, Josephson M, Nezafat. Feasibility of real time integration of high-resolution scar images with invasive electrograms in electro-anatomical mapping system in patients undergoing ventricular tachycardia ablation. Journal of Cardiovascular Magnetic Resonance 15(Suppl 1) E94. 2013.
Roujol, Basha T, Schulke, Buehrer, Manning W, Nezafat. Low latency iterative reconstruction of first pass stress cardiac perfusion with physiological stress using graphical processing unit,. Journal of Cardiovascular Magnetic Resonance 15(Suppl 1) E10. 2013.
Schulke, Roujol, Foppa, Gervino, Kissinger K, Goddu, Berg, Kozerke, Manning W, Nezafat. Real-time slice tracking for free-breathing cardiac MR stress perfusion after physical exercise. In Proceedings 21th Scientific Meeting International Society of Magnetic Resonance in Medicine page 1318. 2013.
Basha T, Roujol, Kissinger K, Goddu, Berg, Manning W, Nezafat. Real-time slice tracking for free-breathing cardiac MR stress perfusion after physical exercise. In Proceedings 21th Scientific Meeting International Society of Magnetic Resonance in Medicine page 1319. 2013.
Moghari M, Henningsson, Roujol, Kissinger K, Annese, Manning W, Geva, Powell A, Nezafat. Three-dimensional image-based navigator for 3D MR coronary angiography. In Proceedings 21th Scientific Meeting International Society of Magnetic Resonance in Medicine page 1313. 2013.
Roujol, Basha T, Akcakaya, Foppa, Kissinger K, Goddu, Berg, Manning W, Nezafat. Supplemental oxygenation and hyper ventilation for accelerated 3D late gadolinium enhancement imaging of left ventricle within a single breath hold. In Proceedings 21th Scientific Meeting International Society of Magnetic Resonance in Medicine page 1373. 2013.
Roujol, Basha T, Schulke, Buehrer, Manning W, Nezafat. GPU vs CPU cluster reconstruction for low latency iterative reconstruction of first pass stress cardiac perfusion with physiological stress. In Proceedings 21th Scientific Meeting International Society of Magnetic Resonance in Medicine page 1323. 2013.
Roujol, Basha T, Akcakaya, Berg, Manning W, Nezafat. Highly accelerated free-breathing ECG-triggered contrast-enhanced pulmonary vein angiography with isotropic spatial resolution. In International Magnetic Resonance Angiography Working Group. 2013.
Nam SH, Akçakaya M, Basha T, Stehning C, Manning W, Tarokh V, Nezafat R. Compressed sensing reconstruction for whole-heart imaging with 3D radial trajectories: a graphics processing unit implementation. Magn Reson Med. 2013;69(1):91–102.
A disadvantage of three-dimensional (3D) isotropic acquisition in whole-heart coronary MRI is the prolonged data acquisition time. Isotropic 3D radial trajectories allow undersampling of k-space data in all three spatial dimensions, enabling accelerated acquisition of the volumetric data. Compressed sensing (CS) reconstruction can provide further acceleration in the acquisition by removing the incoherent artifacts due to undersampling and improving the image quality. However, the heavy computational overhead of the CS reconstruction has been a limiting factor for its application. In this article, a parallelized implementation of an iterative CS reconstruction method for 3D radial acquisitions using a commercial graphics processing unit is presented. The execution time of the graphics processing unit-implemented CS reconstruction was compared with that of the C++ implementation, and the efficacy of the undersampled 3D radial acquisition with CS reconstruction was investigated in both phantom and whole-heart coronary data sets. Subsequently, the efficacy of CS in suppressing streaking artifacts in 3D whole-heart coronary MRI with 3D radial imaging and its convergence properties were studied. The CS reconstruction provides improved image quality (in terms of vessel sharpness and suppression of noise-like artifacts) compared with the conventional 3D gridding algorithm, and the graphics processing unit implementation greatly reduces the execution time of CS reconstruction yielding 34-54 times speed-up compared with C++ implementation.
