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SIMULATION OF BRISK AND FAST PHASE- CONTRAST MAGNETIC RESONANCE IMAGING BY COMPUTATIONAL FLUID DYNAMICS

机译:计算流体动力学的快速和快速相位对比磁共振成像模拟

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Cardiac synchronized magnetic resonance imaging of flowfields has suffered due to the relatively long acquisition times required. We developed a rapid MRI approach, BRISK PCA (Block Regional Interpolation Scheme for k-space Phase Contrast Angiography) which was simulated here using data generated by computational fluid dynamics to investigate the role of interpolation and segmentation on the accuracy and efficiency of the method. BRISK differs from other sparse sampling schemes in that the sampling rate is a function of the position in k-space and interpolation is used to generate data points not directly acquired. Combined with conventional segmentation, this allows more efficient use of time, resulting in rapid acquisitions with good spatial and temporal resolution. FAST (Fourier Acquisition in Time) is a similar sparse sampling strategy that varies the segmentation factor, rather than the sampling rate, as a function of k-space position. BRISK and FAST can be performed in nearly equally scan times. However, deviation from ideal in the FAST data was highly dependant on the starting phase of the flow waveform, while BRISK was immune to such variation. Simulations showed that BRISK (up to segmentation factor 5) and FAST 5 retained excellent axial-velocity accuracy, but the accuracy of FAST was variable and dependent on waveform characteristics.
机译:由于所需的采集时间相对较长,Flowfields的心脏同步磁共振成像已经遭受。我们开发了一种快速的MRI方法,使用计算流体动力学产生的数据来探讨通过计算流体动态产生的数据来探讨内插和分割对方法的准确性和效率的作用,它开发了一种快速的MRI方法。 Sprisk与其他稀疏采样方案的不同之处在于采样率是k空间中的位置的函数,并且用于生成未直接获取的数据点的内插。结合常规分割,这允许更有效的时间使用,从而产生具有良好空间和时间分辨率的快速采集。快速(傅里叶采集及时)是一种类似的稀疏采样策略,其变化分割因子,而不是采样率,而不是采样率,作为k空间位置的函数。可以在几乎同样的扫描时间内进行快速和快速。然而,从快速数据中的理想偏差高度依赖于流动波形的起始阶段,而活跃对这种变化的影响。仿真显示,快步(直到分割因子5)和快5保留出色的轴向速度精度,但快速的精度是可变的,取决于波形特性。

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