Sensory Substitution for Blindness

(SenSubMRI Trial)

Not yet recruiting at 1 trial location
MN
ST
Overseen ByStudy Team
No Placebo GroupAll trial participants will receive the active study treatment (no placebo)

What You Need to Know Before You Apply

What is the purpose of this trial?

This trial aims to explore how the brain adapts when visual information converts into sound or touch for both blind and sighted individuals. Participants will use special technology to "see" through sound or touch for five weeks. Researchers will employ brain scans and simple tasks to measure how well participants learn using these new sensory methods. The trial seeks individuals who are blind or sighted, possess good hearing, and can walk independently. As an unphased study, this trial offers a unique opportunity to contribute to groundbreaking research that could enhance sensory substitution techniques.

Do I have to stop taking my current medications for the trial?

The trial protocol does not specify whether you need to stop taking your current medications. However, if you are using medication for neurological or psychiatric conditions, you may not be eligible to participate.

What prior data suggests that this sensory substitution method is safe?

Studies have shown that methods for replacing lost senses, such as converting visual information into touch or sound, are generally user-friendly. For the vision-to-touch method, research indicates that people can learn to interpret touch patterns without major negative effects. One study found that using a touch device improved task performance, with no significant safety issues reported.

Similarly, for the vision-to-sound method, research shows that these systems can enhance blind individuals' awareness of their surroundings and improve navigation. A study on a sound-based device found it easy to use, with no significant negative effects noted.

These findings suggest that both vision-to-touch and vision-to-sound technologies are safe, with no major side effects reported in these studies. Participants adapted well to these devices, indicating a strong safety record for these methods.12345

Why are researchers excited about this trial?

Researchers are excited about the sensory substitution techniques being tested for blindness because they offer a novel approach to processing visual information. Unlike standard options like guide dogs or canes, which aid in navigation but don't provide visual information, these techniques convert sight into sound or touch. The vision-to-sound method allows users to interpret visual scenes through auditory cues, while the vision-to-touch method translates visuals into tactile patterns. This innovative mechanism of action empowers users to experience their environment in a new way, potentially enhancing independence and quality of life.

What evidence suggests that this trial's treatments could be effective for blindness?

Research has shown that devices can assist blind individuals by converting visual information into sound or touch. In this trial, researchers will divide participants into groups to test these methods. One group will undergo vision-to-touch sensory substitution training, learning to interpret touch patterns derived from visual information. Studies have found that touch patterns can enhance basic visual skills in blind individuals, enabling them to interpret visual scenes as accurately as sighted people. Another group will engage in vision-to-sound sensory substitution training, learning to interpret sound patterns derived from visual information. The method that converts images into soundscapes helps users recognize visual scenes through sound. Users of these systems have demonstrated improved spatial awareness, comparable to using traditional aids like white canes. These findings suggest that sensory substitution can effectively enhance visual abilities through sound or touch.12678

Who Is on the Research Team?

KC

Kevin C. Chan, PhD

Principal Investigator

Stanford University

Are You a Good Fit for This Trial?

This trial is for blind individuals aged 8-85 with severe vision loss, or sighted adults aged 18-85 with normal vision. Participants must be able to use the sensory devices, complete tasks, communicate with staff, and safely undergo brain scans. People with certain medical conditions or implanted metal/electrical devices cannot join.

Inclusion Criteria

Willing and able to complete tactile or auditory tasks
I am within the required age range for my vision status.
Able to understand and remember the training protocols
See 6 more

Exclusion Criteria

Obesity preventing MRI scanner placement
Documented or suspected brain damage resulting in significant cognitive or sensory impairment
I do not have any neurological disorders needing emergency care.
See 7 more

Timeline for a Trial Participant

Screening

Participants are screened for eligibility to participate in the trial

2-4 weeks

Training

Participants learn to use technologies to assist in visual information conversion into sound or touch patterns

5 weeks
Daily training sessions

Brain Imaging and Testing

Participants visit the brain imaging center for brain scans and behavioral tests

5 weeks
3 visits (in-person)

Follow-up

Participants are monitored for safety and effectiveness after training

4 weeks

What Are the Treatments Tested in This Trial?

Interventions

  • Vision Conversion to Sound or Touch

Trial Overview

The study tests two assistive technologies: BrainPort (which turns images into touch signals on the tongue) and AI Sight (which converts visuals into sounds), compared to a sham device. It examines how these tools affect learning and brain activity in people who are blind versus those who can see.

How Is the Trial Designed?

3

Treatment groups

Experimental Treatment

Placebo Group

Group I: Vision-to-touch sensory substitution trainingExperimental Treatment1 Intervention
Group II: Vision-to-sound sensory substitution trainingExperimental Treatment1 Intervention
Group III: Sham trainingPlacebo Group1 Intervention

Find a Clinic Near You

Who Is Running the Clinical Trial?

Stanford University

Lead Sponsor

Trials
2,527
Recruited
17,430,000+

National Eye Institute (NEI)

Collaborator

Trials
572
Recruited
1,320,000+

Citations

Learning visual to auditory sensory substitution reveals ...

In the version used in this study, The vOICe converts a 64 × 64-pixel image into a mono “soundscape”, where frequency corresponds to the ...

Evaluation of an Audio-haptic Sensory Substitution Device for ...

Our aims were to evaluate the efficiency of the Sound of Vision system for mobility, compare it with the white cane, and quantify training effects.

Sensory Substitution and Brain Plasticity Following Vision ...

The main questions it aims to answer are: Does converting visual information into sound or touch patterns change visual performance in the blind or blindfolded?

Sensory substitution of vision: Importance of perceptual ...

Here, the required information is immense, insuring that sensory substitution based on isomorphic mapping of raw visual data from a video camera onto the.

Mapping visual distance to audio and tactile frequency - PMC

Evaluation of an audio-haptic sensory substitution device for enhancing spatial awareness for the visually impaired. Optometry and Vision ...

Auditory Sensory Substitution is Intuitive and Automatic ...

Sensory substitution is used to aid the sensory-impaired such as the blind by encoding the information inaccessible to the lost sense into ...

Navigation aid for blind persons by visual-to-auditory sensory ...

A visual-to-auditory sensory substitution device to improve the performance of blind persons in navigation and recognition tasks.

The Sound of Vision Project: On the Feasibility of an Audio- ...

The Sound of Vision project involves developing a sensory substitution device that is aimed at creating and conveying a rich auditory representation of the ...