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Updated: Jul 8, 2026

Concurrent EEG and Functional MRI Recording and Integration Analysis for Dynamic Cortical Activity Imaging
Published on: June 30, 2018
Temporal Dynamics of EEG Reflect Continuous Error Correction during Force Control
N Menghi1, E Balestrieri2, D Grignolio3
1Max Planck for Human Cognitive and Brain Sciences, Department of Psychology, Leipzig 04103, Germany menghi@cbs.mpg.de c.m.hickey@bham.ac.uk.
Abstract:
Effective motor control depends on the ability to monitor performance and make continuous corrections. While many studies focus on discrete errors, everyday actions often require ongoing feedback-based adjustments. Here, we used an isometric force control task with electroencephalography (EEG) to investigate the neural dynamics supporting real-time error correction. Participants (13 females, 10 males) maintained a constant grip force with or without continuous visual feedback. With feedback, behavior showed ∼6 Hz rhythmic fluctuations, consistent with active correction. These fluctuations were statistically linked to EEG activity across theta, beta, and alpha bands-oscillations linked to performance monitoring, updating, and attentional control. Without feedback, performance decayed linearly, and the corresponding neural signatures were reduced. These findings suggest that continuous sensory feedback engages a dynamic feedback loop involving distinct neural processes that support adaptive behavior. Our results highlight the importance of oscillatory activity in tracking and correcting moment-to-moment fluctuations in force, offering insight into the neural basis of feedback-loop force control.

