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No need to touch this: Bimanual haptic slant adaptation does not require touch.
Catharina Glowania1, Myrthe A Plaisier2, Marc O Ernst1,3
1Cognitive Neuroscience Department and Cognitive Interaction Technology-Center of Excellence, Bielefeld University, Bielefeld, Germany.
Plos One
|August 1, 2020
Summary
Bimanual adaptation using static touch leads to aftereffects, but these effects are posture-based and do not transfer to dynamic exploration. This suggests static touch adaptation is proprioceptive, not object-based.
Area of Science:
- * Neuroscience
- * Human motor control
- * Haptic perception
Background:
- * Bimanual object interaction is common, raising questions about intermanual information sharing.
- * Previous research shows curvature adaptation transfers between hands during dynamic, but not static, exploration.
- * The extent of shared adaptation during simultaneous static bimanual exploration remains unclear.
Purpose of the Study:
- * To investigate if static bimanual adaptation leads to aftereffects.
- * To determine if these aftereffects transfer to dynamic exploration modes.
- * To explore whether static bimanual adaptation is posture-based or object-based.
Main Methods:
- * Three experiments using a slant adaptation paradigm with static and dynamic haptic exploration.
- * Participants adapted to felt slanted surfaces or held hands in mid-air.
- * Aftereffects were tested across different exploration modes (static and dynamic).
Main Results:
- * Static bimanual adaptation produced aftereffects in static testing conditions.
- * Aftereffects did not transfer to any exploration mode involving dynamic movement.
- * Similar aftereffects were observed with and without a haptic surface.
Conclusions:
- * Static bimanual adaptation is primarily proprioceptive in nature.
- * Adaptation does not occur at the level of object representation.
- * Intermanual information sharing in static touch is limited and posture-dependent.
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