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Kalman filter-based time-varying cortical connectivity analysis of newborn EEG

机译:基于卡尔曼滤波器的新生儿eEG的时变皮质连接分析

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Multivariate Granger causality in the time-frequency domain as a representation of time-varying cortical connectivity in the brain has been investigated for the adult case. This is, however, not the case in newborns as the nature of the transient changes in the newborn EEG is different from that of adults. This paper aims to evaluate the performance of the time-varying versions of the two popular Granger causality measures, namely Partial Directed Coherence (PDC) and direct Directed Transfer Function (dDTF). The parameters of the time-varying AR, that models the inter-channel interactions, are estimated using Dual Extended Kalman Filter (DEKF) as it accounts for both non-stationarity and non-linearity behaviors of the EEG. Using simulated data, we show that fast changing cortical connectivity between channels can be measured more accurately using the time-varying PDC. The performance of the time-varying PDC is also tested on a neonatal EEG exhibiting seizure.
机译:为成年案例研究了时频域中的多变量格子因果关系作为大脑中大脑中的时变皮质连接的表示。然而,这不是新生儿的情况,因为新生EEG的瞬态变化的性质与成年人不同。本文旨在评估两种流行的格兰杰因果区措施的时变版本,即部分定向的连贯(PDC)和直接指向传递函数(DDTF)的性能。使用双重扩展卡尔曼滤波器(DEKF)估计,模拟通道间交互的时变AR的参数,因为它会占EEG的非实用性和非线性行为。使用模拟数据,我们表明可以使用时变PDC更准确地测量通道之间的快速改变的皮质连接。时变PDC的性能也在表现出癫痫发作的新生儿EEG上进行测试。

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