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Fast reconstruction for multichannel compressed sensing using a hierarchically semiseparable solver

机译:使用分层半可分离求解器快速重建多通道压缩感知

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摘要

PurposeThe adoption of multichannel compressed sensing (CS) for clinical magnetic resonance imaging (MRI) hinges on the ability to accurately reconstruct images from an undersampled dataset in a reasonable time frame. When CS is combined with SENSE parallel imaging, reconstruction can be computationally intensive. As an alternative to iterative methods that repetitively evaluate a forward CS+SENSE model, we introduce a technique for the fast computation of a compact inverse model solution.MethodsA recently proposed hierarchically semiseparable (HSS) solver is used to compactly represent the inverse of the CS+SENSE encoding matrix to a high level of accuracy. To investigate the computational efficiency of the proposed HSS-Inverse method, we compare reconstruction time with the current state-of-the-art. In vivo 3T brain data at multiple image contrasts, resolutions, acceleration factors, and number of receive channels were used for this comparison.ResultsThe HSS-Inverse method allows for math formula speedup when compared to current state-of-the-art reconstruction methods with the same accuracy. Efficient computational scaling is demonstrated for CS+SENSE with respect to image size. The HSS-Inverse method is also shown to have minimal dependency on the number of parallel imaging channels/acceleration factor.ConclusionsThe proposed HSS-Inverse method is highly efficient and should enable real-time CS reconstruction on standard MRI vendors' computational hardware.
机译:目的采用多通道压缩传感(CS)进行临床磁共振成像(MRI)取决于能否在合理的时间范围内从欠采样数据集中准确重建图像。当CS与SENSE平行成像结合使用时,重建可能需要大量计算。作为反复评估前向CS + SENSE模型的迭代方法的替代方法,我们引入了一种快速计算紧凑型逆模型解决方案的技术。 + SENSE编码矩阵具有很高的准确性。为了研究所提出的HSS-Inverse方法的计算效率,我们将重建时间与当前的最新技术进行了比较。比较中使用了具有多个图像对比度,分辨率,加速因子和接收通道数的体内3T脑数据。结果与当前最新的重建方法相比,HSS逆方法可以加快数学公式的运算速度相同的精度。相对于图像大小,CS + SENSE的有效计算比例得到了证明。 HSS-Inverse方法还显示出对并行成像通道数量/加速因子的依赖性最小。结论所提出的HSS-Inverse方法效率很高,应该能够在标准MRI供应商的计算硬件上进行实时CS重建。

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