Characterization of imaging latency for real-time MRI-guided radiotherapy

被引:41
作者
Borman, P. T. S. [1 ,2 ]
Tijssen, R. H. N. [1 ]
Bos, C. [2 ]
Moonen, C. T. W. [2 ]
Raaymakers, B. W. [1 ]
Glitzner, M. [1 ]
机构
[1] Univ Med Ctr Utrecht, Dept Radiotherapy, Heidelberglaan 100, NL-3584 CX Utrecht, Netherlands
[2] Univ Med Ctr Utrecht, Imaging Div, Heidelberglaan 100, Utrecht, Netherlands
关键词
MR-linac; real-time MRI; imaging latency; radial MRI; MR-guided tracking; readout ordering; TARGET TRACKING; DYNAMIC MRI; COMPENSATION; MOTION; RECONSTRUCTION; MLC; PERFORMANCE; PREDICTION; ORGANS;
D O I
10.1088/1361-6560/aad2b7
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Hybrid MR-linac systems can use fast dynamic MR sequences for tumor tracking and adapt the radiation treatment in real-time. For this the imaging latency must be as short as possible. This work describes how different acquisition parameters influence this latency. First, the latency was measured for Cartesian readouts with phase encode orderings linear, reverse-linear, and high-low. Second, the latency was measured for radial readouts with linear and golden angle profile orderings. To reduce the latency, a spatio-temporal (k-t) filter that suppresses the k-space center of earlier acquired spokes was implemented for the golden angle sequence. For Cartesian readouts a high-low ordering achieved a three times lower latency compared to a linear ordering with our sampling parameters. For radial readouts the filter was able to reduce the acquisition latency from half the acquisition time to a quarter of the acquisition time. The filter did not compromise the signal-to-noise ratio and the artifact power.
引用
收藏
页数:9
相关论文
共 31 条
[21]   Real-Time MR-Thermometry and Dosimetry for Interventional Guidance on Abdominal Organs [J].
Roujol, Sebastien ;
Ries, Mario ;
Quesson, Bruno ;
Moonen, Chrit ;
de Senneville, Baudouin Denis .
MAGNETIC RESONANCE IN MEDICINE, 2010, 63 (04) :1080-1087
[22]   Prediction of respiratory tumour motion for real-time image-guided radiotherapy [J].
Sharp, GC ;
Jiang, SB ;
Shimizu, S ;
Shirato, H .
PHYSICS IN MEDICINE AND BIOLOGY, 2004, 49 (03) :425-440
[23]   Dynamic MRI with projection reconstruction and KWIC processing for simultaneous high spatial and temporal resolution [J].
Song, HK ;
Dougherty, L .
MAGNETIC RESONANCE IN MEDICINE, 2004, 52 (04) :815-824
[24]   Image-driven, model-based 3D abdominal motion estimation for MR-guided radiotherapy [J].
Stemkens, Bjorn ;
Tijssen, Rob H. N. ;
de Senneville, Baudouin Denis ;
Lagendijk, Jan J. W. ;
van den Berg, Cornelis A. T. .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (14) :5335-5355
[25]   Potential improvements of lung and prostate MLC tracking investigated by treatment simulations [J].
Toftegaard, Jakob ;
Keall, Paul J. ;
O'Brien, Ricky ;
Ruan, Dan ;
Ernst, Floris ;
Homma, Noriyasu ;
Ichiji, Kei ;
Poulsen, Per Rugaard .
MEDICAL PHYSICS, 2018, 45 (05) :2218-2229
[26]   AMPLITUDE SPECTRA OF NATURAL IMAGES [J].
TOLHURST, DJ ;
TADMOR, Y ;
CHAO, T .
OPHTHALMIC AND PHYSIOLOGICAL OPTICS, 1992, 12 (02) :229-232
[27]   CNR considerations for rapid real-time MRI tumor tracking in radiotherapy hybrid devices: Effects of B0 field strength [J].
Wachowicz, K. ;
De Zanche, N. ;
Yip, E. ;
Volotovskyy, V. ;
Fallone, B. G. .
MEDICAL PHYSICS, 2016, 43 (08) :4903-4914
[28]   An optimal radial profile order based on the golden ratio for time-resolved MRI [J].
Winkelmann, Stefanie ;
Schaeffter, Tobias ;
Koehler, Thomas ;
Eggers, Holger ;
Doessel, Olaf .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2007, 26 (01) :68-76
[29]   Comparison of parallel MRI reconstruction methods for accelerated 3D fast spin-echo imaging [J].
Xiao, Zhikui ;
Hoge, W. Scott ;
Mulkern, R. V. ;
Zhao, Lei ;
Hu, Guangshu ;
Kyriakos, Walid E. .
MAGNETIC RESONANCE IN MEDICINE, 2008, 60 (03) :650-660
[30]   An improved optical flow tracking technique for real-time MR-guided beam therapies in moving organs [J].
Zachiu, C. ;
Papadakis, N. ;
Ries, M. ;
Moonen, C. ;
de Senneville, B. Denis .
PHYSICS IN MEDICINE AND BIOLOGY, 2015, 60 (23) :9003-9029