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Intelligent Control to Suppress Epileptic Seizures in the Amygdala: In Silico Investigation Using a Network of Izhikevich Neurons

da Silva Lima; Gabriel; Rosa Cota, Vinícius; Moreira Bessa, Wallace

Intelligent Control to Suppress Epileptic Seizures in the Amygdala: In Silico Investigation Using a Network of Izhikevich Neurons

da Silva Lima
Gabriel
Rosa Cota, Vinícius
Moreira Bessa, Wallace
Katso/Avaa
Intelligent_Control_to_Suppress_Epileptic_Seizures_in_the_Amygdala_In_Silico_Investigation_Using_a_Network_of_Izhikevich_Neurons.pdf (9.985Mb)
Lataukset: 

Institute of Electrical and Electronics Engineers (IEEE)
doi:10.1109/TNSRE.2025.3543756
URI
https://doi.org/10.1109/tnsre.2025.3543756
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Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2025082791466
Tiivistelmä

Closed-loop electricalstimulation of brain structures is one of the most promising techniques to suppress epileptic seizures in drug-resistant refractory patients who are also ineligible to ablative neurosurgery. In this work, an intelligent controller is presented to block the aberrant activity of a network of Izhikevich neurons of three different types, used here to model the electrical activity of the basolateral amygdala during ictogenesis, i.e. its transition from asynchronous to hypersynchronous state. A Lyapunov-based nonlinear scheme is used as the main framework for the proposed controller. To avoid the issue of accessing each neuron individually, local field potentials are used to gain insight into the overall state of the Izhikevich network. Artificial neural networks are integrated into the control scheme to manage unknown dynamics and disturbances caused by brain electrical activity that are not accounted for in the model. Four different cases of ictogenesis induction were tested. The results show the efficacy of the proposed control strategy to suppress epileptic seizures and suggest its capability to address both patient-specific and patient-to-patient variability.

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