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Improving Cerebral Blood Flow Quantification for Arterial Spin Labeled Perfusion MRI by Removing Residual Motion Artifacts and Global Signal Fluctuations

机译:通过去除残余运动伪影和全局信号波动来改善动脉旋转标记灌注MRI的脑血流量

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摘要

Denoising is critical to improving the quality and stability of cerebral blood flow (CBF) quantification in arterial spin labeled (ASL) perfusion MRI due to the intrinsic low signal-to-noise-ratio (SNR) of ASL data. Previous studies have been focused on reducing the spatial or temporal noise using standard filtering techniques, and less attention has been paid to two global nuisance effects, the residual motion artifacts and the global signal fluctuations. Since both nuisances affect the whole brain, removing them in advance should enhance the CBF quantification quality for ASL MRI. The purpose of this paper was to assess this potential benefit. Three methods were proposed to suppress each or both of the two global nuisances. Their performances for CBF quantification were validated using ASL data acquired from 13 subjects. Evaluation results showed that covarying out both global nuisances significantly improved temporal SNR and test-retest stability of CBF measurement. Although the concept of removing both nuisances is not technically novel per se, this paper clearly showed the benefits for ASL CBF quantification. Dissemination of the proposed methods in a free ASL data processing toolbox should be of interest to a broad range of ASL users.
机译:由于ASL数据固有的低信噪比(SNR),因此去噪对提高动脉自旋标记(ASL)灌注MRI中脑血流(CBF)量化的质量和稳定性至关重要。以前的研究集中在使用标准滤波技术降低空间或时间噪声的方面,而对两个全局扰动效应(残余运动伪影和全局信号波动)的关注较少。由于这两种滋扰都会影响整个大脑,因此提前清除它们会提高ASL MRI的CBF量化质量。本文的目的是评估这种潜在的好处。提出了三种方法来抑制两个全局干扰中的每一个或全部。使用从13位受试者获得的ASL数据验证了其CBF量化的表现。评估结果表明,同时消除两个全局干扰可显着提高时间SNR和CBF测量的重测稳定性。尽管消除这两种干扰的概念本身在技术上并不新颖,但本文清楚地表明了ASL CBF定量的好处。在免费的ASL数据处理工具箱中传播建议的方法应该引起广泛的ASL用户的兴趣。

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