Eye gaze, also called eye tracking, is an access method that allows a person to control a computer, communication device, or other technology by looking at different areas of a screen. A camera-based system tracks eye movement and translates where a person is looking into cursor movement or selection. This page is a general educational overview; it does not recommend a particular eye-gaze system for any individual, since fit depends heavily on a person's specific visual, motor, and cognitive profile.
Eye gaze may benefit people with significant physical disabilities who have limited or no reliable use of their hands, arms, or other body parts, but who have functional eye movement and visual attention. It is commonly considered for individuals with conditions affecting motor control throughout the body, when eye movement remains one of the most consistent and voluntary actions available.
Eye-gaze technology is used for AAC, allowing a person to build messages by looking at symbols or letters on a communication device. It is used for computer access, allowing email, web browsing, and document creation through gaze-controlled cursor movement and selection. In education, it can support participation in reading, writing, and classroom activities. For environmental control, gaze can be used to operate lights, media, and other connected devices. Eye gaze is also used recreationally, including for gaze-controlled games and creative applications.
Most eye-gaze systems require a calibration process in which the system learns how a specific person's eyes move in relation to the screen. Calibration quality has a major effect on accuracy, and some individuals may need adjusted or simplified calibration routines, or periodic recalibration during a session.
Consistent head and body positioning relative to the eye-tracking camera is important for accurate tracking. A stable, well-supported seating position generally improves accuracy and reduces fatigue compared to positions that allow significant head movement.
Eye-gaze systems and their cameras are often mounted on a wheelchair, adjustable arm, or stand so that the screen and sensor remain in a consistent position relative to the user across different settings and activities.
Screen size affects how far apart on-screen targets are and how much precision is required to select them. Larger screens can make small targets easier to distinguish but may require more eye movement, while smaller screens or larger on-screen buttons can reduce the precision needed for selection.
Eye-tracking cameras are generally designed to work within a specific range of distances from the user's eyes. Maintaining an appropriate and consistent viewing distance helps the system track eye movement accurately.
Ambient lighting, including sunlight and overhead lighting, can interfere with some eye-tracking cameras. Consistent, moderate lighting without strong glare or backlighting generally supports more reliable tracking.
Many eye-gaze systems can track eyes through glasses or contact lenses, though certain lens coatings, strong prescriptions, or specific eye conditions may affect tracking accuracy for some individuals. This is generally evaluated on an individual basis during trial and setup.
Dwell selection is a common method for making a choice with eye gaze, in which looking at a target for a set amount of time triggers a selection. Dwell time can usually be adjusted to balance selection speed against accidental selections.
Some systems support selection through a deliberate blink or through a separate switch activated by another body part, rather than relying on dwell time alone. This can reduce accidental selections for some users and may feel more natural than dwell-based selection for others.
Eye-gaze accuracy can be affected by calibration quality, lighting, positioning, fatigue, and certain eye conditions. Many systems allow on-screen target size and spacing to be adjusted to accommodate the accuracy an individual can achieve reliably.
Sustained visual focus and precise eye control required for eye-gaze use can be tiring, particularly during long sessions. Rest breaks, adjustable dwell times, and well-designed on-screen layouts can help manage fatigue.
Because eye gaze depends on functional vision and eye movement, visual acuity, visual field, eye movement control, and conditions affecting the eyes are all relevant considerations when evaluating whether eye gaze is an appropriate access method.
While eye gaze is often used specifically because other motor access methods are not reliable, some degree of head stability and eye movement control is still needed, and involuntary eye or head movements can affect accuracy for some individuals.
Eye-gaze systems can be sensitive to their physical environment, including lighting changes throughout the day, glare from windows, and the stability of the mounting surface. Environments that will be used regularly should generally be considered during setup and trial.
Learning to use eye gaze effectively often takes practice, both to build the visual and attentional skills needed for accurate selection and to become comfortable with calibration and system settings. Training frequently starts with simple activities before progressing to more complex communication or computer tasks.
Feature matching for eye-gaze systems involves aligning factors such as camera range, mounting options, calibration flexibility, selection methods, and software compatibility with an individual's visual and motor abilities, physical setup, and goals.
Because eye-gaze success depends on many individual factors, a trial period with a specific system is generally valuable before committing to a purchase, allowing the user, family, and professionals to confirm that positioning, calibration, and selection methods work well in real settings.
Visual, motor, and cognitive abilities can change over time, so periodic reassessment of an eye-gaze setup can help confirm it still matches an individual's current needs and abilities.
For a broader discussion of access methods on Mac computers, see Mac Access Methods. For general guidance on matching technology to individual needs, see AT Assessment & Selection. For AAC-specific access methods, see AAC Access Methods. For individualized evaluation of eye-gaze needs, visit AssistiveTechnologyEvaluations.org.
For professional guidance on selecting eye-gaze AAC systems, see Eye Gaze 101 from ASHA. For help locating state assistive technology programs and services, see Explore AT from the AT3 Center. For manufacturer information on how eye-tracking technology works, see How Eye Tracking Works for AAC from Tobii Dynavox.
This page is provided for general educational purposes and is maintained by Accessibility Clinic, Inc. Eye-gaze needs vary by individual, task, environment, positioning, equipment, and goals, so the examples described here do not constitute individualized recommendations. For an individualized evaluation, see AssistiveTechnologyEvaluations.org.