Adaptively focusing extra-ocular vision prostheses
A vision prosthesis includes an actuator in communication with an extra-ocular lens. The actuator providing a focusing stimulus to vary a focal length of the lens. A rangefinder estimates a range to an object and provides the range estimate to a controller. The controller causes the actuator to generate the focusing stimulus on the basis of the range estimate.
1. A vision prosthesis comprising:
an actuator in communication with an extra-ocular lens, the actuator providing a focusing stimulus to vary a focal length of the lens;
a biofeedback system for identifying, at least in part on the basis of cues provided by a wearer of the vision prosthesis, a gaze direction leading to an object;
a rangefinder for estimating a range to the object; and
a controller in communication with the rangefinder and the actuator, the controller being configured to cause the actuator to generate the focusing stimulus on the basis of the range estimate.
2. The vision prosthesis of claim 1 , wherein the biofeedback system is configured to detect a feature of the wearer's eye, and to estimate the gaze direction at least in part on the basis of the feature.
3. The vision prosthesis of claim 1 , wherein the rangefinder comprises:
a radiation source oriented to illuminate the object; and
a radiation detector for detecting a reflection from the object.
4. The vision prosthesis of claim 1 , wherein the range finder comprises:
a first sensor for forming a first image of the object;
a second sensor for forming a second image of the object; and
a differencing element for generating difference data indicative of a difference between the first and second images.
5. Eyeglasses comprising:
a frame;
a variable-focus lens mounted on the frame; and
a vision prosthesis as recited in claim 1 .
6. A method for assisting a patient in focusing on an object, the method comprising:
providing an extraocular lens for the patient to look through, the extraocular lens having a variable focal length;
identifying, at least in part on the basis of cues provided by a wearer of the vision prosthesis, a gaze direction leading to an object within a field of view of the extraocular lens;
estimating a distance to the object; and
causing the focal length to change in response to the estimate.
7. The method of claim 6 , wherein estimating a distance to an object comprises:
detecting a feature of an eye, the feature being selected to depend on a gaze direction of the eye;
estimating, at least in part on the basis of the feature, a gaze direction; and
selecting the object to be along the gaze direction.
8. The method of claim 7 , wherein detecting a feature comprises detecting locations of magnets implanted into the eye.
9. The method of claim 7 , wherein detecting a feature comprises detecting an apparent shape of a pupil.
10. The method of claim 7 , wherein detecting a feature comprises detecting Purkinje images.
11. The method of claim 7 , further comprising calibrating the feature with a known gaze direction.
12. The method of claim 6 , wherein estimating a distance comprises detecting a feature of an eye, the feature being selected to depend on an attempted accommodation of the eye.
13. The method of claim 12 , wherein detecting a feature comprises detecting an inter-pupillary distance.
14. The method of claim 12 , wherein detecting a feature comprises detecting a diameter of a pupil.
15. An apparatus for correcting vision, the apparatus comprising:
means for identifying, on the basis of cues provided by a wearer of an extraocular lens, a gaze direction leading to an object in the field of view of the extraocular lens;
means for estimating a range to the object; and
means for varying a focal length of an extra-ocular lens on the basis of the range estimate.
16. The apparatus of claim 15 , wherein the means for estimating a range comprises means for estimating a range on the basis of a feature of at least one eye.
17. The apparatus of claim 16 , further comprising means for identifying a direction leading to the object.
18. The apparatus of claim 17 , wherein the means for estimating a range is configured to estimate a range to an object lying in the direction identified by the means for identifying a direction.
19. A vision prosthesis comprising:
an actuator in communication with an extra-ocular lens, the actuator providing a focusing stimulus to vary a focal length of the lens;
a biofeedback system for estimating the distance to an object in the field of view of the extra-ocular lens on the basis of cues provided by a wearer of the vision prosthesis; and
a controller in communication with the rangefinder and the actuator, the controller being configured to cause the actuator to generate the focusing stimulus on the basis of the range estimate.