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Application of the reciprocity theorem to EEG inversion and optimization of EEG-driven transcranial current stimulation (tCS, including tDCS, tACS, tRNS)

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arxiv 1506.04835 v2 pith:KBJXAUP3 submitted 2015-06-16 physics.bio-ph physics.med-ph

classification physics.bio-phphysics.med-ph
keywords reciprocitystimulationbraincorticalmappingmatrixrealistictheorem
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Multichannel transcranial current stimulation (tCS) systems offer the possibility of EEG-guided optimized, non-invasive brain stimulation. In this brief technical note I explain how it is possible to use tCS electric field realistic brain model to create a forward "lead-field" matrix and, from that, an EEG inverter for cortical mapping. Starting from EEG I show how to generate 2D cortical surface dipole fields that could produce the observed EEG electrode voltages. The main tool is the reciprocity theorem derived by Helmholtz. The application of reciprocity for the generation of a forward mapping matrix (lead field matrix as is sometimes known) is well known [Rush and Driscoll, 1969], but here we will use it in combination with the realistic head models of [Miranda et al 2013] to provide cortical mapping solutions compatible with realistic head model tCS optimization. I also provide a generalization of the reciprocity theorem [Helmholtz 1853] to the case of multiple electrode contact points and dipole sources, and discuss its uses in non-invasive brain stimulation based on EEG. This, as far as I know, is a novel result. Applications are discussed.

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  1. Design and Validation of a Portable EEG-tES Platform Supporting High-Rate EEG Recording and Temporal Interference Stimulation

    eess.SP 2026-08 conditional novelty 6.0 of 10

    A single-microcontroller wearable platform records 8-channel EEG at up to 8 kHz while generating tDCS, tACS, and temporal interference stimulation, with validation on bench tests and a gelatine head phantom.

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