Predicting Functional Connectivity From Observed and Latent Structural Connectivity via Eigenvalue Mapping

被引:6
|
作者
Cummings, Jennifer A. [1 ]
Sipes, Benjamin [2 ]
Mathalon, Daniel H. [3 ,4 ]
Raj, Ashish [1 ,2 ]
机构
[1] Univ Calif San Francisco, Dept Bioengn & Therapeut Sci, San Francisco, CA 94143 USA
[2] Univ Calif San Francisco, Dept Radiol & Biomed Imaging, San Francisco, CA 94143 USA
[3] San Francisco VA Med Ctr, San Francisco, CA USA
[4] Univ Calif San Francisco, Dept Psychiat & Behav Sci, San Francisco, CA 94143 USA
关键词
BOLD fMRI; functional connectivity; structural connectivity; spectral graph theory; eigenvalue decomposition; network diffusion model; inter-hemispheric connections; schizophrenia; RESTING-STATE NETWORKS; HUMAN CONNECTOME; BRAIN NETWORKS; FIELD-THEORY; ROBUST; REGISTRATION; FMRI; SEGMENTATION; OPTIMIZATION; ALIGNMENT;
D O I
10.3389/fnins.2022.810111
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Understanding how complex dynamic activity propagates over a static structural network is an overarching question in the field of neuroscience. Previous work has demonstrated that linear graph-theoretic models perform as well as non-linear neural simulations in predicting functional connectivity with the added benefits of low dimensionality and a closed-form solution which make them far less computationally expensive. Here we show a simple model relating the eigenvalues of the structural connectivity and functional networks using the Gamma function, producing a reliable prediction of functional connectivity with a single model parameter. We also investigate the impact of local activity diffusion and long-range interhemispheric connectivity on the structure-function model and show an improvement in functional connectivity prediction when accounting for such latent variables which are often excluded from traditional diffusion tensor imaging (DTI) methods.
引用
收藏
页数:13
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