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Sparse Constrained Reconstruction for Accelerating Parallel Imaging Based on Variable Splitting Method

机译:基于可变分裂法加速并行成像的稀疏约束重建

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Parallel imaging is a rapid magnetic resonance imaging technique. For the ill-conditioned problem, noise and aliasing artifacts are amplified during the reconstruction process and are serious especially for high accelerating imaging. In this paper, a sparse constrained reconstruction problem is proposed for parallel imaging, and an effective solution based on the variable splitting method is contrived. First-order and second-order norm optimization problems are first split, and then they are transferred to unconstrained minimization problem by the augmented Lagrangian method. At last, first-order norm and second-order norm optimization problems are alternatively resolved by different methods. With a discrepancy principle as the stopping criterion, analysis of simulated and actual parallel magnetic resonance image reconstruction is presented and discussed. Compared with the routine parallel imaging reconstruction methods, the results show that the noise and aliasing artifacts in the reconstructed image are evidently reduced at large acceleration factors.
机译:并行成像是一种快速的磁共振成像技术。对于不存在的问题,在重建过程中扩增噪声和混叠伪像,并且严重特别适用于高加速成像。本文提出了一种稀疏约束的重建问题,用于并行成像,并对基于可变分裂法的有效解决方案进行了作用。首次分割一阶和二阶规范优化问题,然后通过增强拉格朗日方法转移到无约束最小化问题。最后,一阶规范和二阶规范优化问题是通过不同的方法解决的。通过作为停止标准的差异原理,提出和讨论了模拟和实际并联磁共振图像重建的分析。与常规并行成像重建方法相比,结果表明,在大型加速因子下,重建图像中的噪声和混叠伪像显然降低。

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