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Incremental Activation Detection for Real-Time fMRI Series Using Robust Kalman Filter

机译:使用鲁棒Kalman滤波器的实时FMRI系列增量激活检测

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摘要

Real-time functional magnetic resonance imaging (rt-fMRI) is a technique that enables us to observe human brain activations in real time. However, some unexpected noises that emerged in fMRI data collecting, such as acute swallowing, head moving and human manipulations, will cause much confusion and unrobustness for the activation analysis. In this paper, a new activation detection method for rt-fMRI data is proposed based on robust Kalman filter. The idea is to add a variation to the extended kalman filter to handle the additional sparse measurement noise and a sparse noise term to the measurement update step. Hence, the robust Kalman filter is designed to improve the robustness for the outliers and can be computed separately for each voxel. The algorithm can compute activation maps on each scan within a repetition time, which meets the requirement for real-time analysis. Experimental results show that this new algorithm can bring out high performance in robustness and in real-time activation detection.
机译:实时功能磁共振成像(RT-FMRI)是一种技术,使我们能够实时观察人脑激活。然而,在FMRI数据收集中出现的一些意想不到的噪音,例如急性吞咽,头部移动和人类操纵,将对激活分析造成大量混乱和不乐观。本文提出了一种基于鲁棒卡尔曼滤波器的RT-FMRI数据的新激活检测方法。该想法是向扩展卡尔曼滤波器添加变化,以处理额外的稀疏测量噪声和稀疏噪声术语到测量更新步骤。因此,强大的卡尔曼滤波器旨在提高异常值的稳健性,并且可以针对每个体素分开计算。该算法可以在重复时间内计算每次扫描的激活映射,这符合实时分析的要求。实验结果表明,这种新算法可以在鲁棒性和实时激活检测中发出高性能。

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