Desynchronization Index: a New Connectivity Approach for Exploring Epileptogenic Networks
Federico Mason, Lorenzo Ferri, Lidia Di Vito, Lara Alvisi, Luca Zanuttini, Matteo Martinoni, Roberto Mai, Francesco Cardinale, Paolo Tinuper, Roberto Michelucci, Elena Pasini, Francesca Bisulli

TL;DR
This paper introduces the Desynchronization Index, a novel connectivity-based computational method that improves the identification of epileptogenic zones in SEEG data, outperforming traditional indices and enhancing seizure network understanding.
Contribution
The study presents the Desynchronization Index, a new algorithm leveraging effective connectivity measures to better define epileptogenic zones in SEEG analysis.
Findings
DI outperforms EI in AUC (0.85 vs. 0.83)
Combining DI and EI yields the best AUC (0.87)
DI captures connectivity dynamics not visible through visual analysis
Abstract
Objective: This work presents a new computational framework to assist neurophysiologists in Stereoelectroencephalography (SEEG) analysis, with the goal of improving the definition of the Epileptogenic Zone (EZ) in patients with drug-resistant epilepsy. Methods and procedures: We consider the Phase Transfer Entropy (PTE) to estimate the effective connectivity between SEEG channels, and design a novel algorithm, named the Desynchronization Index (DI), that identifies the EZ as the group of channels showing independent behavior with respect to the rest of the network during the seconds preceding the seizure propagation. Results: We test the proposed DI algorithm against the Epileptogenicity Index (EI) on a clinical dataset of 20 patients, considering the channels that were thermocoagulated at the end of SEEG monitoring as the detection target. Our results indicate that DI overcomes EI in…
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Taxonomy
TopicsNeural dynamics and brain function · Fractal and DNA sequence analysis · EEG and Brain-Computer Interfaces
