UIH America Inc., Houston, Texas, USA.
Department of Radiology, Zhongnan Hospital of Wuhan University, Wuhan, China.
NMR Biomed. 2021 Jul;34(7):e4529. doi: 10.1002/nbm.4529. Epub 2021 May 13.
MRI signals are intrinsically multi-dimensional, and signal behavior may be orthogonal among different dimensions. Such dimensional orthogonality can be utilized to eliminate unwanted effects and facilitate mathematical simplicity during image processing for improved outcomes. In this work, we will demonstrate and analyze the principles and performance of a newly developed multi-dimensional integration (MDI) strategy in MR T * mapping. By constructing a complex signal function to extract the inter-echo signal changes, MDI solves an optimization problem by processing all signal dimensions (eg echoes, flip angles and coil channels) in one integrative step. MDI was compared with routine curve fitting methods on noise behavior, quantification accuracy and computational efficiency. All methods were tested and compared on simulation, phantom and knee data. Monte Carlo simulations were performed on simulation and all MRI data to investigate noise propagation from k space to T * maps. For phantom tests, T * values in regions of interest were extracted on a voxel-wise basis and analyzed using a paired t-test between scanning parameters and mapping methods, with p < 0.05 being significantly different. MDI facilitated a straightforward processing procedure, yielding homogeneous, high-signal-to-noise-ratio (SNR) and artifact-free T * maps without explicit coil combination or additional measures. Compared with routine fitting methods, MDI offered significantly (p < 0.05) improved SNR and quantitative accuracy/robustness, with two to three orders higher computational efficiency. MDI also represented low-SNR signals with low T * values, avoiding misinterpretation with long-T * species.
MRI 信号本质上是多维的,信号行为在不同维度之间可能是正交的。这种维度正交性可用于消除不需要的影响,并在图像处理过程中促进数学简化,从而获得更好的结果。在这项工作中,我们将展示和分析一种新开发的多维积分(MDI)策略在磁共振 T映射中的原理和性能。通过构建一个复杂的信号函数来提取回波间信号变化,MDI 通过在一个集成步骤中处理所有信号维度(例如回波、翻转角和线圈通道)来解决优化问题。MDI 与常规曲线拟合方法在噪声行为、定量准确性和计算效率方面进行了比较。所有方法都在模拟、体模和膝关节数据上进行了测试和比较。在模拟和所有 MRI 数据上进行了蒙特卡罗模拟,以研究噪声从 k 空间传播到 T图的情况。对于体模测试,在体素基础上提取感兴趣区域的 T值,并使用扫描参数和映射方法之间的配对 t 检验进行分析,p<0.05 表示差异显著。MDI 简化了处理过程,产生了均匀、高信噪比(SNR)和无伪影的 T图,无需明确的线圈组合或额外的措施。与常规拟合方法相比,MDI 显著提高了 SNR 和定量准确性/稳健性(p<0.05),计算效率提高了两个到三个数量级。MDI 还表示具有低 T值的低 SNR 信号,避免了对长 T物质的错误解释。