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The Parallel Kalman Filter: An efficient tool to deal with real-time non central χ noise correction of HARDI data

机译:并行卡尔曼滤波器:一种有效的工具,可处理HARDI数据的实时非中心χ噪声校正

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摘要

We propose a novel real-time non central χ (nc-χ) noise correction method for diffusion-weighted MR data that are known to be particularly sensitive to noise, especially at high b-values. This technique aims to be real-time during the acquisition to get any map stemming from the Diffusion Tensor Imaging (DTI) and the High Angular Resolution Diffusion Imaging (HARDI) models corrected from nc-χ noise. The method is based on a Parallel Kalman Filter which is well adapted for non-Gaussian noise distributions, and which is as suitable for real time purposes as the standard Kalman filter (KF). The results on simulated and real HARDI data show that it outperforms the standard KF approach since non-Gaussian noise distributions are directly embedded in the process through their Gaussian mixture approximation.
机译:我们针对扩散加权MR数据提出了一种新颖的实时非中心χ(nc-χ)噪声校正方法,已知该方法对噪声特别敏感,尤其是在高b值时。这项技术的目标是在采集过程中实时获取从扩散张量成像(DTI)和高角度分辨率扩散成像(HARDI)模型得到的任何地图,并根据nc-χ噪声进行校正。该方法基于并行卡尔曼滤波器,该滤波器非常适合于非高斯噪声分布​​,并且与标准卡尔曼滤波器(KF)一样适用于实时目的。模拟和真实HARDI数据的结果表明,它优于标准KF方法,因为非高斯噪声分布​​通过它们的高斯混合逼近直接嵌入到过程中。

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