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Accelerating iterative field-compensated MR image reconstruction on GPUs

机译:在GPU上加速迭代场补偿MR图像重建

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We propose a fast implementation for iterative MR image reconstruction using Graphics Processing Units (GPU). In MRI, iterative reconstruction with conjugate gradient algorithms allows for accurate modeling the physics of the imaging system. Specifically, methods have been reported to compensate for the magnetic field inhomogeneity induced by the susceptibility differences near the air/tissue interface in human brain (such as orbitofrontal cortex). Our group has previously presented an algorithm for field inhomogeneity compensation using magnetic field map and its gradients. However, classical iterative reconstruction algorithms are computationally costly, and thus significantly increase the computation time. To remedy this problem, one can utilize the fact that these iterative MR image reconstruction algorithms are highly parallelizable. Therefore, parallel computational hardware, such as GPU, can dramatically improve their performance. In this work, we present an implementation of our field inhomogeneity compensation technique using NVIDA CUDA(Compute Unified Device Architecture)-enabled GPU. We show that the proposed implementation significantly reduces the computation times around two orders of magnitude (compared with non-GPU implementation) while accurately compensating for field inhomogeneity.
机译:我们建议使用图形处理单元(GPU)进行迭代MR图像重建的快速实现。在MRI中,具有共轭梯度算法的迭代重建允许准确地建模成像系统的物理学。具体地,已经报道了方法以补偿由人脑中的空气/组织界面附近的易感性差异引起的磁场不均匀性(例如胰腺癌皮质)。我们的小组以前介绍了使用磁场图及其梯度的现场不均匀性补偿算法。然而,经典迭代重建算法是昂贵的昂贵的,因此显着增加了计算时间。为了解决这个问题,可以利用这些迭代MR图像重建算法非常平行化的事实。因此,并行计算硬件(例如GPU)可以显着提高它们的性能。在这项工作中,我们使用NVIDA CUDA(Compute Unified Device Architecture)-Enabled GPU来实现我们的现场不均匀性补偿技术的实施。我们表明,建议的实施方式大大减少了两种数量级(与非GPU实施相比)的计算时间,同时精确地补偿现场不均匀性。

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