Background and objectives: Feedback plays a crucial role for using brain computer interface systems. This paper proposes the use of vibration-evoked kinaesthetic illusions as part of a novel multisensory feedback for a motor imagery (MI)-based BCI and investigates its contributions in terms of BCI performance and electroencephalographic (EEG) correlates. Methods: sixteen subjects performed two different right arm MI-BCI sessions: with the visual feedback only and with both visual and vibration-evoked kinaesthetic feedback, conveyed by the stimulation of the biceps brachi tendon. In both conditions, the sensory feedback was driven by the MI-BCI. The rich and more natural multisensory feedback was expected to facilitate the execution of MI, a...
International audienceWe are developing a brain-computer interface integrating visual and vibrotacti...
Abstract Background Motor imagery (MI) induced EEG patterns are widely used as control signals for b...
Brain-computer interfaces (BCIs) can be used to induce neural plasticity in the human nervous system...
Background and objectives: Feedback plays a crucial role for using brain computer interface systems....
International audienceKinesthetic motor imagery (KMI) based braincomputer interfaces hold great pote...
Motor imagery techniques are largely used in asynchronous BCI for the control of external devices. I...
International audienceMotor Imagery-based BCI (MI-BCI) performances remain highly variable, with up ...
International audienceBrain-computer Interfaces (BCI) and Functional electrical stimulation (FES) co...
The use of robotic devices to provide active motor support and sensory feedback of ongoing motor int...
International audienceNeurofeedback (NF) and brain-computer interface (BCI) applications rely on the...
| openaire: EC/H2020/678578/EU//HRMEGBrain-computer interfaces (BCI) can be designed with several fe...
Controlling a device via a brain-computer interface (BCI) requires the participant to look and to sp...
International audienceBy performing motor-imagery tasks, for example, imagining hand movements, Moto...
Controlling a brain-actuated device requires the participant to look at and to split his attention b...
Motor-Imagery based Brain Computer Interfaces (MI-BCIs) allow users to interact with computers by im...
International audienceWe are developing a brain-computer interface integrating visual and vibrotacti...
Abstract Background Motor imagery (MI) induced EEG patterns are widely used as control signals for b...
Brain-computer interfaces (BCIs) can be used to induce neural plasticity in the human nervous system...
Background and objectives: Feedback plays a crucial role for using brain computer interface systems....
International audienceKinesthetic motor imagery (KMI) based braincomputer interfaces hold great pote...
Motor imagery techniques are largely used in asynchronous BCI for the control of external devices. I...
International audienceMotor Imagery-based BCI (MI-BCI) performances remain highly variable, with up ...
International audienceBrain-computer Interfaces (BCI) and Functional electrical stimulation (FES) co...
The use of robotic devices to provide active motor support and sensory feedback of ongoing motor int...
International audienceNeurofeedback (NF) and brain-computer interface (BCI) applications rely on the...
| openaire: EC/H2020/678578/EU//HRMEGBrain-computer interfaces (BCI) can be designed with several fe...
Controlling a device via a brain-computer interface (BCI) requires the participant to look and to sp...
International audienceBy performing motor-imagery tasks, for example, imagining hand movements, Moto...
Controlling a brain-actuated device requires the participant to look at and to split his attention b...
Motor-Imagery based Brain Computer Interfaces (MI-BCIs) allow users to interact with computers by im...
International audienceWe are developing a brain-computer interface integrating visual and vibrotacti...
Abstract Background Motor imagery (MI) induced EEG patterns are widely used as control signals for b...
Brain-computer interfaces (BCIs) can be used to induce neural plasticity in the human nervous system...