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Updated: Sep 26, 2026

Memorization-Based Training and Testing Paradigm for Robust Vocal Identity Recognition in Expressive Speech Using Event-Related Potentials Analysis
Published on: August 9, 2024
A stereoencephalography study of internal speech
A V Naumov1, G A Soghoyan1,2, A V Makarova1
1A. A. Kharkevich Institute for Information Transmission Problems, Russian Academy of Sciences, Moscow, Russian Federation.
Abstract:
With advances in intracranial recording techniques, converting speech-related brain activity into commands for brain-computer interfaces (BCIs) is becoming increasingly feasible. In this study, we explored the utility of stereoencephalography (sEEG) for decoding covert and overt speech in humans. sEEG data were collected from 11 epilepsy patients undergoing presurgical monitoring, while they performed a set of speech tasks-overt speech, articulated speech, and imagined (inner) speech, as well as a handwriting task. Time- and frequency-domain analyses revealed that each speech condition elicited distinct spectral modulations, particularly in the alpha (8-12 Hz) and gamma (50-80 Hz) bands across temporal and frontal regions. Inner speech exhibited reduced and delayed activation in key motor and language-related areas, distinguishing it from both overt and articulated speech. In contrast, handwriting evoked a different activity pattern, marked by gamma desynchronization and more sustained alpha increases. A machine learning classifier achieved an average accuracy of 72% in distinguishing the three speech conditions based on their neural spectral profiles. These findings show that imagined speech is neurally the most distinct compared to the other speech tasks and demonstrate that sEEG can reliably detect the transitions between internal and overt forms of speech. This work contributes to the development of multimodal BCIs capable of decoding covert language representations, with implications for restoring communication in individuals with severe motor or speech impairments.
Supplementary Information:
The online version contains supplementary material available at https://doi.org/10.1007/s11571-026-10554-9.
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