We propose the Fourier-domain transfer entropy spectrum, a generalization of transfer entropy, as a model-free metric of causality. For arbitrary systems, this approach systematically quantifies the causality among their different system components rather than merely analyzing systems as entireties. The generated spectrum offers a rich-information representation of time-varying latent causal relations, efficiently dealing with nonstationary processes and high-dimensional conditions. We demonstrate its validity in the aspects of parameter dependence, statistical significance tests, and sensibility. An open-source multiplatform implementation of this metric is developed and computationally applied on neuroscience data sets and diffusively coupled logistic oscillators.
CITATION STYLE
Tian, Y., Wang, Y., Zhang, Z., & Sun, P. (2021). Fourier-domain transfer entropy spectrum. Physical Review Research, 3(4). https://doi.org/10.1103/PhysRevResearch.3.L042040
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