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An improved GRAPPA image reconstruction algorithm for parallel MRI

机译:改进的并行MRI的GRAPPA图像重建算法

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Reconstruction from partial k-space data is an important issue in parallel magnetic resonance imaging (PMRI), as k-space undersampling during data acquisition is liable to produce artifacts in the image. In order to remove the image aliasing due to k-space undersampling, this paper presents a new finite impulse response (FIR) model of GRAPPA algorithm to replace the FIR model whose coefficients are fixed and currently used in GRAPPA image reconstruction methods. The proposed FIR model has been a better description for the correlation of k-space data and a better approximation for the inversion of parallel imaging process. The method is demonstrated using the proposed GRAPPA algorithm with in vivo free-breathing cardiac imaging data and the results show that this improved algorithm can greatly improve the image quality even at very high acceleration factor.
机译:在并行磁共振成像(PMRI)中,从部分k空间数据进行重构是一个重要的问题,因为在数据采集过程中k空间欠采样很容易在图像中产生伪像。为了消除由于k空间欠采样而引起的图像混叠,本文提出了一种新的GRAPPA算法的有限冲激响应(FIR)模型,以代替系数固定且目前在GRAPPA图像重建方法中使用的FIR模型。所提出的FIR模型已经很好地描述了k空间数据的相关性,并且为并行成像过程的反演提供了更好的近似值。使用提出的GRAPPA算法结合体内自由呼吸的心脏成像数据对该方法进行了验证,结果表明,即使在非常高的加速因子下,这种改进的算法也可以极大地改善图像质量。

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