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April 14, 2008Physical Review Letters599 citations

Symbolic Transfer Entropy

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MSMatthäus StaniekKLKlaus Lehnertz

Key Points

  • This research aims to quantify the direction of information flow between coupled systems using symbolic transfer entropy.
  • Numerically demonstrated symbolic transfer entropy for estimating information flow.
  • Analyzed multiday, multichannel electroencephalographic recordings from 15 epilepsy patients.
  • Identified hemisphere containing the epileptic focus without observing seizure activity.
  • Successfully identified the hemisphere with the epileptic focus in all patients.
  • Symbolic transfer entropy showed robustness and computational efficiency compared to traditional methods.

Abstract

We propose to estimate transfer entropy using a technique of symbolization. We demonstrate numerically that symbolic transfer entropy is a robust and computationally fast method to quantify the dominating direction of information flow between time series from structurally identical and nonidentical coupled systems. Analyzing multiday, multichannel electroencephalographic recordings from 15 epilepsy patients our approach allowed us to reliably identify the hemisphere containing the epileptic focus without observing actual seizure activity.

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Cite This Study

Staniek et al. (2008) studied this question.

synapsesocial.com/papers/6a158d21814bf8ec9a4ec0f6https://doi.org/10.1103/physrevlett.100.158101
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