Direct Estimation of Differential Functional Graphical Models

Boxin Zhao, Y. Samuel Wang, Mladen Kolar

Neural Information Processing Systems 

We consider the problem of estimating the difference between two functional undirected graphical models with shared structures. In many applications, data are naturally regarded as high-dimensional random function vectors rather than multivariate scalars. For example, electroencephalography (EEG) data are more appropriately treated as functions of time.

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