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Accelerating k-t sparse using k-space aliasing for dynamic MRI imaging

机译:使用K-Space aliasing用于动态MRI成像的k-space alias加速K-T稀疏

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Dynamic imaging is challenging in MRI and acceleration techniques are usually needed to acquire dynamic scene. K-t sparse is an acceleration technique based on compressed sensing, it acquires fewer amounts of data in k-t space by pseudo random ordering of phase encodes and reconstructs dynamic scene by exploiting sparsity of k-t space in transform domain. Another recently introduced technique accelerates dynamic MRI scans by acquiring k-space data in aliased form. K-space aliasing technique uses multiple RF excitation pulses to deliberately acquire aliased k-space data. During reconstruction a simple Fourier transformation along time frames can unaliase the acquired aliased data. This paper presents a novel method to combine k-t sparse and k-space aliasing to achieve higher acceleration than each of the individual technique alone. In this particular combination, a very critical factor of compressed sensing, the ratio of the number of acquired phase encodes to the number of total phase encode (n/N) increases therefore compressed sensing component of reconstruction performs exceptionally well. Comparison of k-t sparse and the proposed technique for acceleration factors of 4, 6 and 8 is demonstrated in simulation on cardiac data.
机译:动态成像在MRI中具有挑战性,并且通常需要加速技术来获取动态场景。 K-T稀疏是一种基于压缩感的加速技术,它通过阶段编码的伪随机排序获取较少量的K-T空间中的数据,并通过利用变换域中的K-T空间的稀疏性来重建动态场景。另一个最近引入的技术通过以锯齿形式获取k空间数据加速动态MRI扫描。 k空间锯齿技术使用多个RF激励脉冲来故意获取别名k空间数据。在重建期间,沿着时间框架的简单傅里叶变换可以解析获取的别名数据。本文提出了一种结合K-T稀疏和k空间混叠的新方法,以实现比单独的每个技术的加速度更高的加速度。在这种特定组合中,压缩检测的一个非常关键的因素,所获取的相位编码的数量与总相位编码的数量(n / n)的比率增加,因此重建的压缩感测分量非常良好地执行。 K-T稀疏的比较和第4,6和8的加速因子的提出技术在心脏数据的模拟中进行了说明。

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