Literature DB >> 33907337

Smooth Interpolation of Covariance Matrices and Brain Network Estimation.

Lipeng Ning1.   

Abstract

We propose an approach to use the state covariance of autonomous linear systems to track time-varying covariance matrices of nonstationary time series. Following concepts from the Riemannian geometry, we investigate three types of covariance paths obtained by using different quadratic regularizations of system matrices. The first quadratic form induces the geodesics based on the Hellinger-Bures metric related to optimal mass transport (OMT) theory and quantum mechanics. The second type of quadratic form leads to the geodesics based on the Fisher-Rao metric from information geometry. In the process, we introduce a weighted-OMT interpretation of the Fisher-Rao metric for multivariate Gaussian distributions. A main contribution of this work is the introduction of the third type of covariance paths, which are steered by system matrices with rotating eigenspaces. The three types of covariance paths are compared using two examples with synthetic data and real data from resting-state functional magnetic resonance imaging, respectively.

Entities:  

Keywords:  Brain networks; Riemannian metric; functional magnetic resonance imaging; information theory; optimal control; optimal mass transport (OMT); system identification

Year:  2018        PMID: 33907337      PMCID: PMC8074851          DOI: 10.1109/tac.2018.2879597

Source DB:  PubMed          Journal:  IEEE Trans Automat Contr        ISSN: 0018-9286            Impact factor:   5.792


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  1 in total

1.  Smooth interpolation of covariance matrices and brain network estimation: Part II.

Authors:  Lipeng Ning
Journal:  IEEE Trans Automat Contr       Date:  2019-07-04       Impact factor: 5.792

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