Electrocorticography (ECoG) based Brain-Computer Interfaces (BCIs) have been proposed as a way to restore and replace motor function or communication in severely paralyzed people. To date, most motor-based BCIs have either focused on the sensorimotor cortex as a whole or on the primary motor cortex (M1) as a source of signals for this purpose. Still, target areas for BCI are not confined to M1, and more brain regions may provide suitable BCI control signals. A logical candidate is the primary somatosensory cortex (S1), which not only shares similar somatotopic organization to M1, but also has been suggested to have a role beyond sensory feedback during movement execution. Here, we investigated whether four complex hand gestures, taken from ...
Brain-Computer Interface (BCI) technology enables users to operate external devices without physical...
Brain computer interface (BCI) is an assistive technology, which decodes neurophysiological signals ...
Today, learning from the brain is the most challenging issue in many areas. Neural scientists, compu...
The increasing understanding of human brain functions makes it possible to directly interact with th...
Implantable brain computer interfaces (BCIs) promise to re-establish communication for severely para...
Electrocorticography (ECoG) has been demonstrated as a promising neural signal source for developing...
The sensorimotor cortex is a frequently targeted brain area for the development of Brain-Computer In...
The sensorimotor cortex is a frequently targeted brain area for the development of Brain-Computer In...
In brain-based communication, voluntarily modulated brain signals (instead of motor output) are util...
Millions of people worldwide suffer motor or sensory impairment due to stroke, spinal cord injury, m...
For people suffering from severe paralysis, communication can be difficult or nearly impossible. Tec...
Using brain activity directly as input for assistive tool control can circumvent muscular dysfunctio...
OBJECTIVE: Brain-computer interface (BCI) technology aims to provide individuals with paralysis a me...
The ideal modality for generating sensation in sensorimotor brain computer interfaces (BCI) has not ...
Several motor related Brain Computer Interfaces (BCIs) have been developed over the years that use a...
Brain-Computer Interface (BCI) technology enables users to operate external devices without physical...
Brain computer interface (BCI) is an assistive technology, which decodes neurophysiological signals ...
Today, learning from the brain is the most challenging issue in many areas. Neural scientists, compu...
The increasing understanding of human brain functions makes it possible to directly interact with th...
Implantable brain computer interfaces (BCIs) promise to re-establish communication for severely para...
Electrocorticography (ECoG) has been demonstrated as a promising neural signal source for developing...
The sensorimotor cortex is a frequently targeted brain area for the development of Brain-Computer In...
The sensorimotor cortex is a frequently targeted brain area for the development of Brain-Computer In...
In brain-based communication, voluntarily modulated brain signals (instead of motor output) are util...
Millions of people worldwide suffer motor or sensory impairment due to stroke, spinal cord injury, m...
For people suffering from severe paralysis, communication can be difficult or nearly impossible. Tec...
Using brain activity directly as input for assistive tool control can circumvent muscular dysfunctio...
OBJECTIVE: Brain-computer interface (BCI) technology aims to provide individuals with paralysis a me...
The ideal modality for generating sensation in sensorimotor brain computer interfaces (BCI) has not ...
Several motor related Brain Computer Interfaces (BCIs) have been developed over the years that use a...
Brain-Computer Interface (BCI) technology enables users to operate external devices without physical...
Brain computer interface (BCI) is an assistive technology, which decodes neurophysiological signals ...
Today, learning from the brain is the most challenging issue in many areas. Neural scientists, compu...