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首页> 外文期刊>Medical Imaging, IEEE Transactions on >A Fast Wavelet-Based Reconstruction Method for Magnetic Resonance Imaging
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A Fast Wavelet-Based Reconstruction Method for Magnetic Resonance Imaging

机译:一种基于小波的快速磁共振成像重建方法

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In this work, we exploit the fact that wavelets can represent magnetic resonance images well, with relatively few coefficients. We use this property to improve magnetic resonance imaging (MRI) reconstructions from undersampled data with arbitrary k-space trajectories. Reconstruction is posed as an optimization problem that could be solved with the iterative shrinkage/thresholding algorithm (ISTA) which, unfortunately, converges slowly. To make the approach more practical, we propose a variant that combines recent improvements in convex optimization and that can be tuned to a given specific k-space trajectory. We present a mathematical analysis that explains the performance of the algorithms. Using simulated and in vivo data, we show that our nonlinear method is fast, as it accelerates ISTA by almost two orders of magnitude. We also show that it remains competitive with TV regularization in terms of image quality.
机译:在这项工作中,我们利用了一个事实,即小波可以很好地表示磁共振图像,系数相对较小。我们使用此属性来改善具有任意k空间轨迹的欠采样数据的磁共振成像(MRI)重建。重建是一个优化问题,可以通过迭代收缩/阈值算法(ISTA)解决此问题,但这种算法收敛速度很慢。为了使该方法更实用,我们提出了一种变体,它结合了凸优化的最新改进,并且可以调整到给定的特定k空间轨迹。我们提供了数学分析来解释算法的性能。使用模拟和体内数据,我们证明了我们的非线性方法是快速的,因为它可以将ISTA加速近两个数量级。我们还显示,就图像质量而言,它仍与电视正规化竞争。

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