Estimating Dynamic Connectivity States in fMRI Using Regime-Switching Factor Models.

IEEE Transactions on Medical Imaging(2018)

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摘要
We consider the challenges in estimating the state-related changes in brain connectivity networks with a large number of nodes. Existing studies use the sliding-window analysis or time-varying coefficient models, which are unable to capture both smooth and abrupt changes simultaneously, and rely on ad-hoc approaches to the high-dimensional estimation. To overcome these limitations, we propose a Ma...
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关键词
Brain modeling,Load modeling,Reactive power,Hidden Markov models,Covariance matrices,Estimation
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