An Information Criterion for Inferring Coupling in Distributed Dynamical Systems
arXiv:1605.06931 · doi:10.3389/frobt.2016.00071
Abstract
The behaviour of many real-world phenomena can be modelled by nonlinear dynamical systems whereby a latent system state is observed through a filter. We are interested in interacting subsystems of this form, which we model by a set of coupled maps as a synchronous update graph dynamical systems. Specifically, we study the structure learning problem for spatially distributed dynamical systems coupled via a directed acyclic graph. Unlike established structure learning procedures that find locally maximum posterior probabilities of a network structure containing latent variables, our work exploits the properties of dynamical systems to compute globally optimal approximations of these distributions. We arrive at this result by the use of time delay embedding theorems. Taking an information-theoretic perspective, we show that the log-likelihood has an intuitive interpretation in terms of information transfer.
References in corpus (1)
Cited by in corpus (3)
- Reconciling emergences: An information-theoretic approach to identify causal emergence in multivariate data
- Dynamic mode decomposition in vector-valued reproducing kernel Hilbert spaces for extracting dynamical structure among observables
- Physically-interpretable classification of biological network dynamics for complex collective motions