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Updated: Sep 9, 2026

Applying Incongruent Visual-Tactile Stimuli during Object Transfer with Vibro-Tactile Feedback
Published on: May 23, 2019
Continuous sliding pressure feedback enhances supernumerary robotic thumb proprioception over discrete vibrotactile
Haneen Alsuradi1, Georgios Korres2, Pi Ko2
1Electrical and Computer Engineering, New York University Abu Dhabi, Saadiyat Island, Abu Dhabi, Abu Dhabi, 12918, United Arab Emirates.
Objective:
Supernumerary robotic thumbs (SRTs) offer promising augmentation capabilities, yet their adoption remains limited by the lack of reliable proprioceptive awareness, which is critical for enabling intuitive control and cognitive integration. Vibrotactile and pressure feedback represent two widely used modalities for proprioception that differ fundamentally in their encoding of information: vibrotactile feedback is widely adopted due to its low cost and ease of wearability, but provides discrete, temporally patterned cues, whereas pressure feedback is expensive and bulky yet it delivers continuous, analog signals that more closely resemble natural proprioceptive input.
Approach:
This study compares discrete vibrotactile and continuous sliding pressure feedback for conveying SRT proprioceptive information in the absence of visual input, combining behavioral assessment with EEG. A total of 42 participants were recruited and assigned to either a vibrotactile or pressure feedback group; they wore the SRT, received modality-specific sensory feedback during passive finger movements, and were asked to decode the start and end location of the finger's motion. Sensorimotor event-related desynchronization (ERD) in the alpha and beta bands and beta-band functional connectivity were analyzed to characterize cortical differences between modalities.
Main Results:
Both modalities outperformed implicit feedback, with pressure feedback demonstrating superior accuracy compared to vibrotactile feedback. Vibrotactile feedback elicited more sustained alpha-band ERD across both contralateral and ipsilateral sensorimotor cortices and sustained beta-band ERD in the ipsilateral sensorimotor cortex, suggesting prolonged cortical engagement and increased processing demand. Pressure feedback elicited significantly higher beta-band small-worldness, indicating more efficient network-level integration of proprioceptive information.
Significance:
These findings demonstrate that continuous, analog feedback more effectively supports proprioceptive information and sensorimotor integration than discrete, temporally encoded cues; informing the design of sensory augmentation systems that effectively integrate artificial limbs into the human body schema.

