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MR Imaging via Reduced Generalized Autocalibrating Partially Parallel Acquisition Compressed Sensing

机译:MR成像通过减少的广义式自递形部分平行采集压缩感测

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Magnetic Resonance Imaging (MRI) system in recent times demands a high rate of acceleration in data acquisition to reduce the scanning time. The data acquisition rate can be accelerated to a significant order through Parallel MRI (pMRI) approach. An additional improvement in low sensing time for data acquisition can be achieved using Compressed Sensing (CS) or Compressive Sampling that enables reconstruction of a sparse signal from sub-sample (incomplete) measurements. This paper proposes an efficient pMRI scheme by combining CS with Generalized Auto-calibrating Partially Parallel Acquisitions (GRAPPA) to produce an MR image at high data acquisition rate. A kernel of reduced size is used within GRAPPA for estimating the unobserved encoded samples. Instead of all the unobserved samples, a certain number of the same are estimated randomly. Now, an h -minimization based CS reconstruction technique is used in which the observed and the estimated unobserved samples are taken as measurements to reconstruct the final MR images. Extensive simulation results show that a significant reduction in artifacts and thereby consequent visual improvement in the reconstructed MRIs are achieved even when a high rate of acceleration factor is used. Simulation results also demonstrate that the proposed method outperforms some state-of-art pMRI methods, both in terms of subjective and objective quality assessment for the reconstructed images.
机译:磁共振成像(MRI)系统最近要求数据采集中的高速加速度,以减少扫描时间。通过并行MRI(PMRI)方法可以加速数据采集速率。可以使用压缩感测(CS)或压缩采样来实现用于数据采集的低感测时间的额外改进,该压缩检测能够从子样本(不完整)测量的重建稀疏信号。本文通过将CS与广义自动校准部分平行获取(GRAPPA)组合来提出高效的PMRI方案,以在高数据采集率下产生MR图像。在GRAPPA中使用减少尺寸的内核,以估计未观察到的编码样本。而不是所有不观察的样本,随机估计一定数量的相同。现在,使用基于H次化的CS重建技术,其中观察到的和估计的未观察样本被认为是重建最终MR图像的测量。广泛的仿真结果表明,即使在使用高速加速度因子时,也可以实现伪影的显着降低,从而实现了重建的MRIS的视觉改善。仿真结果还表明,该方法在重建图像的主观和客观质量评估方面表明了一些最先进的PMRI方法。

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