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Real-time cardiac MRI with radial acquisition and k-space variant reduced-FOV reconstruction

机译:实时心脏MRI径向采集和k空间变异的减少FOV重建

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摘要

This work aims to demonstrate that radial acquisition with k-space variant reduced-FOV reconstruction can enable real-time cardiac MRI with an affordable computation cost. Due to non-uniform sampling, radial imaging requires k-space variant reconstruction for optimal performance. By converting radial parallel imaging reconstruction into the estimation of correlation functions with a previously-developed correlation imaging framework, Cartesian k-space may be reconstructed point-wisely based on parallel imaging relationship between every Cartesian datum and its neighboring radial samples. Furthermore, reduced-FOV correlation functions may be used to calculate a subset of Cartesian k-space data for image reconstruction within a small region of interest, making it possible to run real-time cardiac MRI with an affordable computation cost. In a stress cardiac test where the subject is imaged during biking with a heart rate of > 100 bpm, this k-space variant reduced-FOV reconstruction is demonstrated in reference to several radial imaging techniques including gridding, GROG and SPIRiT. It is found that the k-space variant reconstruction outperforms gridding, GROG and SPIRiT in real-time imaging. The computation cost of reduced-FOV reconstruction is ~2 times higher than that of GROG. The presented work provides a practical solution to real-time cardiac MRI with radial acquisition and k-space variant reduced-FOV reconstruction in clinical settings.
机译:这项工作旨在证明采用k空间变异的简化FOV重建进行径向采集可以以可承受的计算成本实现实时心脏MRI。由于采样不均匀,径向成像需要k空间变体重构才能获得最佳性能。通过使用先前开发的相关成像框架将径向并行成像重建转换为相关函数的估计,可以基于每个笛卡尔基准与其相邻径向样本之间的并行成像关系逐点重建笛卡尔k空间。此外,减少的FOV相关函数可用于计算笛卡尔k空间数据的子集,以在较小的目标区域内进行图像重建,从而可以以可承受的计算成本运行实时心脏MRI。在压力性心脏测试中,在骑自行车过程中以> 100 bpm的心率为对象成像时,参照几种径向成像技术(包括网格化,GROG和SPIRiT)证明了这种k空间变异的降低的FOV重建。发现在实时成像中,k空间变体的性能优于网格化,GROG和SPIRiT。简化的FOV重构的计算成本比GROG高约2倍。提出的工作为实时心脏MRI提供了一种实用的解决方案,可在临床环境中进行径向采集和k空间变异的减少FOV重建。

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