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Accelerating phase contrast MR angiography by simplified skipped phase encoding and edge deghosting with array coil enhancement

机译:通过简化的跳过相位编码和具有阵列线圈增强功能的边缘去虚像来加速相衬MR血管造影

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Purpose: The aim of this work is to investigate the feasibility of accelerating phase contrast magnetic resonance angiography (PC-MRA) by the fast imaging method of simplified skipped phase encoding and edge deghosting with array coil enhancement (S-SPEED-ACE). Methods: The parallel imaging method of skipped phase encoding and edge deghosting with array coil enhancement (SPEED-ACE) is simplified for imaging sparse objects like phase contrast MRA. This approach is termed S-SPEED-ACE in which k-space is sparsely sampled with skipped phase encoding at every Nth step using multiple receiver coils simultaneously. The sampled data are then Fourier transformed into a set of ghosted images, each with N-fold aliasing ghosts. Given signal sparseness of MRA, the ghosted images are modeled with a single-layer structure, in which the most dominant ghost within the potentially overlapped ghosts at each pixel is selected to represent the signal of that pixel. The single-layer model is analogous to that used in maximum-intensity-projection (MIP) that selects only the brightest signal even when there are overlapped vessels. With an algorithm based on a least-square-error solution, a deghosted image is obtained, along with a residual map for quality control. In this way, S-SPEED-ACE partially samples k-space using multiple receiver coils in parallel, and yields a deghosted image with an acceleration factor of N. Without full central k-space sampling and differential filtering, S-SPEED-ACE achieves further scan time reduction with a more straightforward reconstruction. In this work, S-SPEED-ACE is demonstrated to accelerate a computer simulated PC-MRA and a real human 3D PC-MRA, which was acquired using a clinical 1.5 T scanner on a healthy volunteer. Results: Images are reconstructed by S-SPEED-ACE to achieve an undersampling factor of up to 8.3 with four receiver coils. The reconstructed images generally have comparable quality as that of the reference images reconstructed from full k-space data. Maximum-intensity-projection images generated from the reconstructed images also demonstrated to be consistent as those from the reference images. Conclusions: By taking advantage of signal sparsity naturally existing in the data, SPEED-ACE was simplified and its efficiency was improved. The feasibility of the proposed S-SPEED-ACE is demonstrated in this work with simulated sampling of an actual 3D head PC-MRA scan.
机译:目的:这项工作的目的是研究通过简化的跳过相位编码和具有阵列线圈增强功能的边缘去虚像的快速成像方法(S-SPEED-ACE)来加速相衬磁共振血管造影(PC-MRA)的可行性。方法:简化了具有矩阵线圈增强功能的跳过相位编码和边缘去鬼影的并行成像方法(SPEED-ACE),可对像相衬MRA这样的稀疏物体成像。这种方法被称为S-SPEED-ACE,其中在第N步同时使用多个接收器线圈,以跳过的相位编码稀疏地采样k空间。然后将采样数据进行傅立叶变换为一组幻影图像,每个幻影图像均具有N倍混叠幻影。给定MRA的信号稀疏性,可以使用单层结构对重影图像进行建模,其中选择每个像素处可能重叠的重影内的最主要的重影来表示该像素的信号。单层模型类似于最大强度投影(MIP)中使用的模型,即使在有重叠血管的情况下,该模型也只会选择最亮的信号。使用基于最小平方误差解决方案的算法,可以获得反虚像图像以及用于质量控制的残差图。这样,S-SPEED-ACE使用多个并行接收线圈对k空间进行部分采样,并生成加速度因子为N的反虚像。在没有完整的中央k空间采样和差分滤波的情况下,S-SPEED-ACE可以实现通过更直接的重构进一步减少扫描时间。在这项工作中,S-SPEED-ACE被证明可以加速计算机模拟的PC-MRA和真实的人类3D PC-MRA,这是通过在健康志愿者身上使用临床1.5 T扫描仪获得的。结果:使用四个接收器线圈,通过S-SPEED-ACE重建图像,以实现高达8.3的欠采样系数。重建的图像通常具有与从完整k空间数据重建的参考图像可比的质量。从重建图像生成的最大强度投影图像也被证明与参考图像一致。结论:利用数据中自然存在的信号稀疏性,简化了SPEED-ACE,并提高了效率。通过对实际3D头部PC-MRA扫描进行模拟采样,证明了拟议的S-SPEED-ACE的可行性。

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