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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Motion-compensated reconstruction of magnetic resonance images from undersampled data
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Motion-compensated reconstruction of magnetic resonance images from undersampled data

机译:来自欠采样数据的磁共振图像的运动补偿重建

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摘要

Magnetic resonance imaging of patients who find difficulty lying still or holding their breath can be challenging. Unresolved intra-frame motion yields blurring artifacts and limits spatial resolution. To correct for intra-frame non-rigid motion, such as in pediatric body imaging, this paper describes a multi-scale technique for joint estimation of the motion occurring during the acquisition and of the desired uncorrupted image. This technique regularizes the motion coefficients to enforce invertibility and minimize numerical instability. This multi-scale approach takes advantage of variable-density sampling patterns used in accelerated imaging to resolve large motion from a coarse scale. The resulting method improves image quality for a set of two-dimensional reconstructions from data simulated with independently generated deformations, with statistically significant increases in both peak signal to error ratio and structural similarity index. These improvements are consistent across varying undersampling factors and severities of motion and take advantage of the variable density sampling pattern.
机译:发现困难仍然或屏住呼吸困难的患者的磁共振成像可能是挑战性的。未解决的内部运动产生模糊伪像并限制空间分辨率。为了校正帧内非刚性运动,例如在儿科体成像中,本文描述了一种多尺度技术,用于在获取期间和所需未损坏图像期间发生运动的联合估计。该技术正规化运动系数以实施可逆性并最小化数值不稳定性。这种多尺度方法利用了加速成像的可变密度采样模式,以从粗略级别解析大运动。结果方法改善了从模拟的数据模拟的数据的一组二维重建的图像质量,峰值信号与误差比和结构相似度指标的统计学上显着增加。这些改进在不同的下采样因子和运动的严重程度上是一致的,并且利用可变密度采样模式。

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