Department of Radiology, University of Michigan, Ann Arbor, MI 48109, USA.
Department of Radiology & Biomedical Imaging, University of California, San Francisco, CA 94158, USA.
Tomography. 2022 Feb 4;8(1):364-375. doi: 10.3390/tomography8010030.
The study aims to test the long-term stability of gradient characteristics for model-based correction of diffusion weighting (DW) bias in an apparent diffusion coefficient (ADC) for multisite imaging trials. Single spin echo (SSE) DWI of a long-tube ice-water phantom was acquired quarterly on six MR scanners over two years for individual diffusion gradient channels, along with B0 mapping, as a function of right-left (RL) and superior-inferior (SI) offsets from the isocenter. Additional double spin-echo (DSE) DWI was performed on two systems. The offset dependences of derived ADC were fit to 4th-order polynomials. Chronic shim gradients were measured from spatial derivatives of B0 maps along the tube direction. Gradient nonlinearity (GNL) was modeled using vendor-provided gradient field descriptions. Deviations were quantified by root-mean-square differences (RMSD), normalized to reference ice-water ADC, between the model and reference (RMSDREF), measurement and model (RMSDEXP), and temporal measurement variations (RMSDTMP). Average RMSDREF was 4.9 ± 3.2 (%RL) and -14.8 ± 3.8 (%SI), and threefold larger than RMSDEXP. RMSDTMP was close to measurement errors (~3%). GNL-induced bias across gradient systems varied up to 20%, while deviation from the model accounted at most for 6.5%, and temporal variation for less than 3% of ADC reproducibility error. Higher SSE RMSDEXP = 7.5-11% was reduced to 2.5-4.8% by DSE, consistent with the eddy current origin. Measured chronic shim gradients below 0.1 mT/m had a minor contribution to ADC bias. The demonstrated long-term stability of spatial ADC profiles and consistency with system GNL models justifies retrospective and prospective DW bias correction based on system gradient design models. Residual errors due to eddy currents and shim gradients should be corrected independent of GNL.
本研究旨在测试基于模型的扩散加权(DW)偏置校正在多站点成像试验中表观扩散系数(ADC)的梯度特征的长期稳定性。在两年内,使用六个磁共振扫描仪每季度对长管冰水 phantom 进行单次自旋回波(SSE)DWI,同时进行 B0 映射,作为右-左(RL)和上-下(SI)相对于等中心的偏移的函数。在两个系统上进行了额外的双自旋回波(DSE)DWI。导出的 ADC 的偏移依赖性拟合到四阶多项式。从管方向的 B0 图的空间导数测量慢性匀场梯度。使用供应商提供的梯度场描述来建模梯度非线性(GNL)。通过模型与参考(RMSDREF)、测量与模型(RMSDEXP)和时间测量变化(RMSDTMP)之间的均方根差(RMSD),将偏差量化为参考冰水 ADC 的归一化值,来定量偏差。平均 RMSDREF 为 4.9 ± 3.2(%RL)和-14.8 ± 3.8(%SI),是 RMSDEXP 的三倍。RMSDTMP 接近测量误差(~3%)。GNL 引起的梯度系统之间的偏差变化高达 20%,而模型偏差最多占 ADC 可重复性误差的 6.5%,时间变化小于 3%。DSE 将 SSE 的 RMSDEXP(7.5-11%)降低至 2.5-4.8%,这与涡流的起源一致。低于 0.1 mT/m 的测量慢性匀场梯度对 ADC 偏差的贡献较小。空间 ADC 分布的长期稳定性和与系统 GNL 模型的一致性证明了基于系统梯度设计模型的回顾性和前瞻性 DW 偏置校正的合理性。由于涡流和匀场梯度引起的残余误差应独立于 GNL 进行校正。