Claims
- 1. A method for controlling an ocular refractive alteration device in order to alter an ocular refractive lens in accordance with an eye of a patient, comprising the steps of:
(a) applying to said eye a measuring light beam formed of incoherent light to provide an applied incoherent measuring light beam; (b) determining an image quality metric in accordance with said applied incoherent measuring light beam; and (c) controlling said ocular refractive lens alteration device in order to alter said refractive lens in accordance with said image quality metric.
- 2. The method for controlling an occular refractive lens alteration device of claim 1, wherein said refractive lens comprises a phakic intraocular lens.
- 3. The method for controlling an occular refractive lens alteration device of claim 1, wherein said refractive lens comprises an aphakic intraocular lens.
- 4. The method for controlling an occular refractive lens alteration device of claim 1, wherein said refractive lens comprises an intracorneal lens.
- 5. The method for controlling an occular refractive lens alteration device of claim 1, wherein said refractive lens comprises contact lens.
- 6. The method for controlling an occular refractive lens alteration device of claim 1, wherein said eye has an aberration further comprising the step of compensating said aberration of said eye in accordance with said image quality metric.
- 7. The method for controlling an occular refractive lens alteration device of claim 1, further comprising the steps of:
(a) applying a perturbation to said image quality metric to provide a perturbed image quality metric; and (b) determining whether a predetermined image quality is obtained in accordance with said perturbed image quality metric.
- 8. The method for controlling an occular refractive lens alteration device of claim 7, further comprising the steps of:
(a) transmitting incoherent source light from an incoherent light source to a mirror; and (b) redirecting said incoherent source light from said incoherent light source to the retina of said eye using said mirror in order to provide said applied incoherent measuring light beam.
- 9. The method for controlling an occular refractive lens alteration device of claim 8, further comprising the steps of reflecting said applied incoherent measuring light beam from said retina to provide a reflected light beam and applying said reflected light beam to a spatial light modulator and an image sensor to provide signals representative of said reflected light beam.
- 10. The method for controlling an occular refractive lens alteration device of claim 9, further comprising the step of selecting an optimized image quality as said predetermined image quality to provide an optimized alteration of said refractive lens.
- 11. The method for controlling an occular refractive lens alteration device of claim 10, further comprising the step of determining said image quality metric in accordance with said signals representative of said reflected light as:
- 12. The method for controlling an occular refractive lens alteration device of claim 11, further comprising the step of computing a control voltage in accordance with said image quality metric.
- 13. The method for controlling an occular refractive lens alteration device of claim 12, further comprising the step of optimizing said control voltage using a parallel stochastic perturbative gradient descent algorithm.
- 14. The method for controlling an occular refractive lens alteration device of claim 13, further comprising the step of performing a wavefront aberration reconstruction computation.
- 15. The method for controlling an occular refractive lens alteration device of claim 7, wherein said image quality metric is a sharpness function.
- 16. The method for controlling an occular refractive lens alteration device of claim 15, wherein said sharpness function comprises:
- 17. The method for controlling an occular refractive lens alteration device of claim 1, further comprising the step of altering said refractive state of said eye in accordance with said compensating.
- 18. A method for locating a tumor in an eye of a patient, comprising the steps of:
(a) applying to said eye a measuring light beam formed of incoherent light to provide an applied incoherent measuring light beam; (b) determining a frequency distribution in accordance with said applied incoherent measuring light beam; and (c) locating said tumor in accordance with said frequency distribution.
- 19. The method for locating a tumor in an eye of a patient of claim 18, further comprising the steps of:
(a) applying a perturbation to said frequency distribution to provide a perturbed frequency distribution; and (b) determining whether a predetermined image quality is obtained in accordance with said perturbed frequency distribution.
- 20. The method for locating a tumor in an eye of a patient of claim 19, further comprising the steps of:
(a) transmitting incoherent light from an incoherent light source to a mirror; and (b) redirecting said incoherent source light from said incoherent light source to the retina of said eye using said mirror in order to provide said applied incoherent measuring light beam.
- 21. The method for locating a tumor in an eye of a patient of claim 18, further comprising the steps of reflecting said applied incoherent measuring light beam from said retina to provide a reflected light beam and applying said reflected light beam to a spatial light modulator.
- 22. The method for locating a tumor in an eye of a patient of claim 21, further comprising the steps of applying said reflected light beam from said spatial light modulator to an image sensor for sensing said reflected light and providing signals representative of said reflected light.
- 23. The method for locating a tumor in an eye of a patient of claim 22, further comprising the step of determining said image quality metric in accordance with said signals representative of said reflected light.
- 24. The method for locating a tumor in an eye of a patient of claim 23, further comprising the step of determining said image quality metric as:
- 25. The method for locating a tumor in an eye of a patient of claim 23, further comprising the step of computing a control voltage in accordance with said image quality metric and optimizing said control voltage using a parallel stochastic perturbative gradient descent algorithm.
- 26. The method for locating a tumor in an eye of a patient of claim 25, wherein said frequency distribution comprises:
- 27 The method for locating a tumor in an eye of a patient of claim 25, further comprising the step of applying a voltage perturbation to said control voltage in accordance with said perturbation applied to said frequency distribution.
- 28. The method for locating a tumor in an eye of a patient of claim 18, further comprising the step of determining a disease diagnosis of said eye in accordance with said locating of said tumor.
- 29. The method for locating a tumor in an eye of a patient of claim 18, further comprising the step of performing surgery on said eye in accordance with said compensating.
- 30. The method for locating a tumor in an eye of a patient of claim 18, in a system having a plurality of grid locations for indicating locations of said eye of said patient further comprising the step of indicating a grid location of said tumor in accordance said frequency distribution.
RELATED APPLICATION
[0001] This Application is a Continuation of U.S. patent application Ser. No. 10,011/187, filed on Nov. 13, 2001 entitled HIGH-RESOLUTION RETINA IMAGING AND EYE ABERRATION DIAGNOSTICS USING STOCHASTIC PARALLEL PERTURBATION GRADIENT DESCENT OPTIMIZATION ADAPTIVE OPTICS, whose disclosure is incorporated by reference herein.
Continuations (1)
|
Number |
Date |
Country |
Parent |
10011187 |
Nov 2001 |
US |
Child |
10164982 |
Jun 2002 |
US |