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Improving arterial spin labeling data by temporal filtering

机译:通过时间过滤改善动脉自旋标记数据

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Arterial spin labeling (ASL) is an MRI method for imaging brain perfusion by magnetically labeling blood in brain feeding arteries. The perfusion is obtained from the difference between images with and without prior labeling. Image noise is one of the main problems of ASL as the difference is around 0.5-2% of the image magnitude. Usually, 20-40 pairs of images need to be acquired and averaged to reach a satisfactory quality. The images are acquired shortly after the labeling to allow the labeled blood to reach the imaged slice. A sequence of images with multiple delays is more suitable for quantification of the cerebral blood flow as it gives more information about the blood arrival and relaxation. Although the quantification methods are sensitive to noise, no filtering or only Gaussian filtering is used to denoise the data in the temporal domain prior to quantification. In this article, we propose an efficient way to use the redundancy of information in the time sequence of each pixel to suppress noise. For this purpose, the vectorial NL-means method is adapted to work in the temporal domain. The proposed method is tested on simulated and real 3T MRI data. We demonstrate a clear improvement of the image quality as well as a better performance compared to Gaussian and normal spatial NL-means filtering.
机译:动脉旋转标记(ASL)是一种通过脑饲喂动脉磁性标记血液成像脑灌注的MRI方法。从具有和未预先标记的图像之间的差异获得灌注。图像噪声是ASL的主要问题之一,因为差异约为图像幅度的0.5-2%。通常,需要获取20-40对图像,以达到令人满意的质量。在标记之后不久地获得图像以允许标记的血液到达成像切片。具有多个延迟的一系列图像更适合于量化脑血流量,因为它提供了有关血液到达和放松的更多信息。尽管量化方法对噪声敏感,但是没有过滤或仅使用高斯滤波来在定量之前将数据列入时间域中。在本文中,我们提出了一种有效的方法来使用每个像素的时序中信息的冗余来抑制噪声。为此目的,矢量NL-均值方法适于在时间域中工作。在模拟和真实的3T MRI数据上测试所提出的方法。与高斯和正常的空间NL均值滤波相比,我们展示了图像质量的清晰提高以及更好的性能。

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