Jensen Elisabeth R, Morrow Duane A, Felmlee Joel P, Odegard Gregory M, Kaufman Kenton R
Motion Analysis Laboratory, Division of Orthopedic Research, Mayo Clinic, Rochester, MN 55905 USA.
Department of Radiology, Mayo Clinic, Rochester, MN 55905 USA.
J Biomech. 2015 Jan 2;48(1):95-103. doi: 10.1016/j.jbiomech.2014.10.035. Epub 2014 Nov 13.
Cine Phase Contrast (CPC) MRI offers unique insight into localized skeletal muscle behavior by providing the ability to quantify muscle strain distribution during cyclic motion. Muscle strain is obtained by temporally integrating and spatially differentiating CPC-encoded velocity. The aim of this study was to quantify CPC measurement accuracy and precision and to describe error propagation into displacement and strain. Using an MRI-compatible jig to move a B-gel phantom within a 1.5 T MRI bore, CPC-encoded velocities were collected. The three orthogonal encoding gradients (through plane, frequency, and phase) were evaluated independently in post-processing. Two systematic error types were corrected: eddy current-induced bias and calibration-type error. Measurement accuracy and precision were quantified before and after removal of systematic error. Through plane- and frequency-encoded data accuracy were within 0.4 mm/s after removal of systematic error - a 70% improvement over the raw data. Corrected phase-encoded data accuracy was within 1.3 mm/s. Measured random error was between 1 to 1.4 mm/s, which followed the theoretical prediction. Propagation of random measurement error into displacement and strain was found to depend on the number of tracked time segments, time segment duration, mesh size, and dimensional order. To verify this, theoretical predictions were compared to experimentally calculated displacement and strain error. For the parameters tested, experimental and theoretical results aligned well. Random strain error approximately halved with a two-fold mesh size increase, as predicted. Displacement and strain accuracy were within 2.6 mm and 3.3%, respectively. These results can be used to predict the accuracy and precision of displacement and strain in user-specific applications.
电影相位对比(CPC)磁共振成像(MRI)通过提供在周期性运动期间量化肌肉应变分布的能力,为局部骨骼肌行为提供了独特的见解。肌肉应变是通过对CPC编码的速度进行时间积分和空间微分获得的。本研究的目的是量化CPC测量的准确性和精确性,并描述误差传播到位移和应变中的情况。使用与MRI兼容的夹具在1.5 T MRI孔内移动B型凝胶体模,收集CPC编码的速度。在后期处理中分别评估三个正交编码梯度(层面内、频率和相位)。校正了两种系统误差类型:涡流引起的偏差和校准型误差。在消除系统误差之前和之后对测量的准确性和精确性进行了量化。消除系统误差后,层面内和频率编码数据的准确性在0.4 mm/s以内——比原始数据提高了70%。校正后的相位编码数据准确性在1.3 mm/s以内。测量的随机误差在1至1.4 mm/s之间,符合理论预测。发现随机测量误差传播到位移和应变中取决于跟踪的时间段数量、时间段持续时间、网格大小和维度顺序。为了验证这一点,将理论预测与实验计算的位移和应变误差进行了比较。对于测试的参数,实验结果与理论结果吻合良好。如预测的那样,随机应变误差随着网格大小增加两倍而大约减半。位移和应变准确性分别在2.6 mm和3.3%以内。这些结果可用于预测特定用户应用中位移和应变的准确性和精确性。