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Nonlinear coil sensitivity estimation for parallel magnetic resonance imaging using data-adaptive steering kernel regression method

机译:基于数据自适应转向核回归方法的并行磁共振成像非线性线圈灵敏度估计

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The parallel magnetic resonance imaging (parallel imaging) technique reduces the MR data acquisition time by using multiple receiver coils. Coil sensitivity estimation is critical for the performance of parallel imaging reconstruction. Currently, most coil sensitivity estimation methods are based on linear interpolation techniques. Such methods may result in Gibbs-ringing artifact or resolution loss, when the resolution of coil sensitivity data is limited. To solve the problem, we proposed a nonlinear coil sensitivity estimation method based on steering kernel regression, which performs a local gradient guided interpolation to the coil sensitivity. The in vivo experimental results demonstrate that this method can effectively suppress Gibbs ringing artifact in coil sensitivity and reduces both noise and residual aliasing artifact level in SENSE reconstruction.
机译:并行磁共振成像(并行成像)技术通过使用多个接收器线圈来减少MR数据采集时间。线圈灵敏度估计对于并行成像重建的性能至关重要。当前,大多数线圈灵敏度估计方法基于线性插值技术。当线圈灵敏度数据的分辨率受到限制时,此类方法可能会导致Gibbs振铃伪影或分辨率损失。为了解决这个问题,我们提出了一种基于转向核回归的非线性线圈灵敏度估计方法,该方法对线圈灵敏度进行局部梯度引导插值。体内实验结果表明,该方法可以有效抑制线圈灵敏度的吉布斯振铃伪影,并降低SENSE重建过程中的噪声和残留混叠伪影水平。

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