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In Vivo O-Space Imaging With a Dedicated 12 cm Z2 Insert Coil on a Human 3T Scanner Using Phase Map Calibration

机译:在使用相位映射校准的人3T扫描仪上的专用12cm Z2插入线圈的体内O空间成像

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摘要

Recently, spatial encoding with nonlinear magnetic fields has drawn attention for its potential to achieve faster gradient switching within safety limits, tailored resolution in regions of interest, and improved parallel imaging using encoding fields that complement the sensitivity profiles of radio frequency receive arrays. Proposed methods can broadly be divided into those that use phase encoding (Cartesian-trajectory PatLoc and COGNAC) and those that acquire nonlinear projections (O-Space, Null space imaging, radial PatLoc, and 4D-RIO). Nonlinear projection data are most often reconstructed with iterative algorithms that backproject data using the full encoding matrix. Just like conventional radial sequences that use linear spatial encoding magnetic fields, nonlinear projection methods are more sensitive than phase encoding methods to imperfect calibration of the encoding fields. In this work, voxel-wise phase evolution is mapped at each acquired point in an O-Space trajectory using a variant of chemical shift imaging, capturing all spin dynamics caused by encoding fields, eddy currents, and pulse timing. Phase map calibration is then applied to data acquired from a high-power, 12 cm, Z2 insert coil with an eight-channel radio frequency transmit-receive array on a 3T human scanner. We show the first experimental proof-of-concept O-Space images on in vivo and phantom samples, paving the way for more in-depth exploration of O-Space and similar imaging methods.
机译:最近,具有非线性磁场的空间编码对其在安全限制内实现更快的梯度切换,在感兴趣的区域中定制分辨率以及使用编码字段来定制分辨率的潜力,以及使用射频接收阵列的灵敏度概况的改进的并行成像。所提出的方法可以广泛地分为使用相位编码(笛卡尔 - 轨迹Patloc和Cognac)的方法,以及获取非线性投影(O空间,空空间成像,径向Patloc和4d-Rio)的方法。非线性投影数据通常是使用完整编码矩阵的迭代算法重建的迭代算法。与使用线性空间编码磁场的传统径向序列一样,非线性投影方法比相位编码方法更敏感,以透露编码字段的校准。在这项工作中,使用化学移植成像的变体,捕获由化学移位成像的变型映射到O空间轨迹中的每个获取的点的体素 - 明智的阶段演进,捕获由编码场,涡流和脉冲定时引起的所有自旋动态。然后将相位映射校准应用于从高功率12cm,Z2插入线圈获取的数据,其中3T人扫描仪上的八通道射频传输接收阵列。我们在体内和幻影样品中展示了第一个实验概念概念O空间图像,为O空间和类似的成像方法进行更深入的探索,铺平了道路。

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