Claims
- 1. An ophthalmic instrument comprising an integral wavefront sensor and display device, wherein the wavefront sensor measures phase aberrations in reflections directed thereto to characterize aberrations of the eye and is operably coupled to the display device, which displays a graphical representation of the aberrations of the eye.
- 2. The ophthalmic instrument of claim 1, wherein said display device comprises a TFT LCD device.
- 3. The ophthalmic instrument of claim 1, wherein said graphical representation comprises two dimensional contour maps that graphically depict contribution of pre-specified terms for the aberrations of the eye.
- 4. The ophthalmic instrument of claim 1, wherein said graphical representation comprises coefficients corresponding to pre-specified terms that characterize the aberrations of the eye.
- 5. The ophthalmic instrument of claim 4, wherein said pre-specified terms characterize defocus, spherical aberration, coma and astigmatism of said phase aberrations.
- 6. The ophthalmic instrument of claim 4, wherein said graphical representation comprises predefined two-dimensional icons that provide a general graphical depiction of said pre-specified terms.
- 7. The ophthalmic instrument of claim 1, configured as a desktop instrument.
- 8. The ophthalmic instrument of claim 1, configured as a hand-held instrument.
- 9. The ophthalmic instrument of claim 1, configured as a hand-held binocular instrument having two channels, each having a separate wavefront sensor.
- 10. The ophthalmic instrument of claim 1, for use as an ophthalmic imaging instrument.
- 11. The ophthalmic instrument of claim 1, for use as an ophthalmic examination instrument.
- 12. The ophthalmic instrument of claim 1, in combination with a lens fabrication system, wherein the adaptive optical subsystem provides data characterizing high order optical aberrations of the eye to the lens fabrication system.
- 13. The ophthalmic instrument of claim 1, in combination with a computer-assisted ophthalmic surgery system, wherein the adaptive optical subsystem provides data characterizing high order optical aberrations of the eye to the computer-assisted ophthalmic surgery system.
- 14. The ophthalmic instrument of claim 1, wherein the instrument provides data characterizing high order optical aberrations of the eye to a practitioner for ophthalmic treatment of the eye.
- 15. The ophthalmic instrument of claim 1, wherein said wavefront sensor comprises a relay lens operably coupled between a lenslet array and imaging device, said relay lens and imaging device mounted on a moveable stage that translates linearly along the optical axis of the relay lens and imaging device.
- 16. The ophthalmic instrument of claim 1, wherein said lenslet array comprises an array of lenslets each comprising a reference fiducial point that contributes to a reference spot pattern imaged by the relay lens onto the imaging device in a calibration mode.
- 17. The ophthalmic instrument of claim 16, wherein a reference null position for calculating movement of a spot in said test spot pattern produced from a given lenslet is derived from location of a spot in said reference spot pattern produced from the given lenslet.
- 18. The ophthalmic instrument of claim 16, wherein said calibration mode dynamically assigns non-overlapping subaperatures of the imaging device to lenslets of the lenslet array for use in tracking movement of spots of the test spot pattern.
- 19. The ophthalmic instrument of claim 16, wherein said calibration mode dynamically assigns non-overlapping subaperatures of the imaging device to particular lenslets of the lenslet array for use in tracking movement of spots of the test spot pattern, wherein each particular lenslet corresponds to a single spot in both said reference spot pattern and said test spot pattern.
- 20. The ophthalmic instrument of claim 1, wherein said said wavefront sensor measures phase aberrations in reflections derived from illumination of the eye by a flash light source.
- 21. The ophthalmic instrument of claim 20, comprises one of a xenon flash lamp and krypton flash lamp.
Cross-Reference to Related Applications
[0001] The present application is related to U.S. application Ser. No. 09/874,401, entitled “Modular Adaptive Optical Subsystem For Integration With A Fundus Camera Body And CCD Camera Unit And Improved Fundus Camera Employing Same” by Bruce M. Levine; U.S. application Ser. No. 09/874,403, entitled “Ophthalmic Imaging Instrument Having An Adaptive Optical Subsystem That Measures Phase Aberrations in Reflections Derived From Light Produced By An Imaging Light Source And That Compensates For Such Phase Aberrations When Capturing Images of Reflections Derived From Light Produced By The Same Imaging Light Source,” by Bruce M. Levine; and U.S. application Ser. No. 09/874,903, entitled “Ophthalmic Instrument Having An Integral Wavefront Sensor and Display Device That Displays A Graphical Representation of High Order Aberrations of the Human Eye Measured by the Wavefront Sensor,” by Bruce M. Levine; each Application filed Jun. 5, 2001 and incorporated herein by reference in its entirety.