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Updated: Jan 15, 2026

SSVEP-based Experimental Procedure for Brain-Robot Interaction with Humanoid Robots
Published on: November 24, 2015
Error-related potentials in EEG signals: feature-based detection for human-robot interaction
Alessandra Fava1, Valeria Villani2, Lorenzo Sabattini2
1Department of Sciences and Methods of Engineering, University of Modena and Reggio Emilia, 42122, Reggio Emilia, Italy. alessandra.fava@unimore.it.
Abstract:
This study explores how to improve the detection of Error-Related Potentials (ErrPs), namely brain signals generated when a person perceives an unexpected action performed by an interacting agent. ErrPs are promising for improving interactions between humans and robots because they offer a way for robots to understand the user's needs and expectations without explicit input. The proposed method aims at characterizing ErrP signals using a wide set of features extracted from electroencephalography (EEG) data, collected from subjects performing different tasks. This feature-based method results more accurate and efficient than traditional approaches, especially when applied to multiple users, or across different experimental setups. This work paves the way to feature-based ErrP detection to enhance human-robot interaction in dynamic environments.
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