Claims
- 1. An ophthalmological surgery system for performing selective ablation of a corneal surface of an eye to effect a desired corneal shape, the system comprising:
a laser for directing a laser beam having a beam axis along a path; an optical scanning element disposed in the beam path for displacing the beam axis over a predetermined area of the corneal surface; a laser treatment table including a listing of coordinate references for the displaced beam, the laser treatment table being sorted to establish a predetermined scanning pattern for the beam; and a computer for controlling the scanning element according to the predetermined scanning pattern.
- 2. The surgery system of claim 1, wherein the treatment table is determined in part with the use of a scaling factor which takes into account differential healing.
- 3. The surgery system of claim 1, wherein the laser treatment table further includes a number of pulses at each coordinate reference and the number of pulses is determined by taking into account differential ablation.
- 4. The surgery system of claim 1, further comprising:
a variable aperture for profiling the laser beam to produce a variable area profiled beam wherein the computer controls a dimension across the area profiled beam and the listing includes the dimension.
- 5. The laser surgery system of claim 4, wherein the optical scanning element is configured to displace the laser beam from an axis of rotation and rotates the beam about the axis.
- 6. The system of claim 5, wherein the listing of coordinate references in the treatment table is sorted by an angle to rotate the beam about the axis.
- 7. The system of claim 6, wherein the scanning element is selected from the group consisting of lenses prisms and mirrors.
- 8. A surgery system for performing selective ablation of a tissue surface to effect a desired tissue shape within a treatment area, comprising:
a pulsed laser for directing a laser beam having an axis along a path; a variable aperture for profiling the beam to produce a variable area profiled beam; an optical scanning element disposed in the beam path for displacing the axis of the profiled beam over a predetermined area of the tissue surface while varying the profile in a predetermined manner; and a computer for controlling the aperture and the scanning element according to a laser treatment table, the laser treatment table including a listing of coordinate references for the area profiled beam.
- 9. The system of claim 8, wherein a dimension across the area profiled beam is varied according to the treatment table, the dimension being in the range of about 8% to 60% of the treatment area.
- 10. The system of claim 9, wherein the table is sorted to establish a scanning pattern for the profiled beam.
- 11. The laser system of claim 10, wherein the listing of coordinate references produces a toric ablation with an axis in the range of about 6 to 87.5 mm.
- 12. The system of claim 10, wherein the listing of coordinate references scans an ablated cylinder in periodic motion along the cylindrical axis.
- 13. The laser system of claim 10, wherein the listing of coordinate references scans profiled beam in a series of overlapping circular ablations of varying diameter and varying offset about an intended ablation center.
- 14. The system of claim 10, further comprising a beam rotator for rotating the beam about an axis of the beam.
- 15. The laser system of claim 10 wherein,
the aperture defines a rotatable variable width slit; the scanning element displaces the beam from a center; and the treatment table is sorted by an angle so as to rotate the beam and the slit about the center with rotational coupling between the rotating slit and the rotating beam.
- 16. An ophthalmological surgery system for performing selective ablation of a corneal surface of an eye to effect a desired corneal shape within a treatment area of an eye, comprising:
a pulsed laser for directing a laser beam along a path; a beam rotator for rotating the beam about an axis of the beam; a variable aperture defining a slit for profiling the beam to produce a variable area profiled beam, a dimension across the profiled beam being variable and in the range of about 8 to 60% of the laser treatment area; an optical scanning element disposed in the beam path for displacing the profiled beam over a predetermined area of the corneal surface while varying the profiled in a predetermined manner, the scanning element displacing the beam from an axis of rotation and varying the angular position of the beam about the axis of rotation; and a computer for controlling the aperture and the scanning element according to a laser treatment table, the laser treatment table including a list of coordinate references for the area profiled beam, the treatment table being sorted by an angle to rotate the beam and the slit about the axis of rotation with rotational coupling between the rotating slit and the angular position of the beam about the axis of rotation.
- 17. A method of performing selective ablation of a corneal surface of an eye to effect a desired corneal shape, the method comprising:
directing a laser beam along a beam path toward an eye; establishing a center of rotation for the beam; displacing the beam from the center of rotation; varying an angular position of the beam to cause the beam to describe a path referenced to the center of rotation, calculating a treatment table comprising a listing of coordinate references for the beam, wherein calculating includes establishing a center of rotation for the beam and determining a series of angular positions of the beam to describe a path referenced to the center of rotation; sorting the listing by angular position to establish a scanning pattern for the beam; and scanning the beam over a predetermined area of the corneal surface according to the sorted listing in the treatment table.
- 18. The method of claim 17, wherein the treatment table is determined in part with the use of a scaling factor which takes into account differential healing rates.
- 19. The method of claim 17, wherein the laser treatment table further includes a number of pulses at each coordinate reference and the number of pulses is determined by taking into account differential ablation depth.
- 20. A method of performing selective ablation of a corneal surface of an eye to effect a desired corneal shape, the method comprising:
directing a laser beam along a beam path toward an eye; calculating a treatment table comprising a listing of coordinate references for the beam; sorting the listing to establish a scanning pattern for the beam; scanning the beam over a predetermined area of the corneal surface according to the sorted listing in the treatment table; establishing a center of rotation for the beam; displacing the beam from the center of rotation; varying an angular position of the beam to cause the beam to describe a path referenced to the center of rotation, wherein the step of sorting sorts the listing by the angular position; profiling the beam with a variable aperture to produce a variable area profiled beam; and varying the profiled beam during the step of scanning.
- 21. The method of claim 20, further comprising rotating the beam about an axis of the beam with a beam rotator.
- 22. A method of performing selective ablation of a corneal surface of an eye to effect a desired corneal shape, the method comprising:
directing a laser beam along a beam path toward the eye; rotating the beam about an axis of the beam with a beam rotator; establishing a center of rotation for the beam; calculating a treatment table comprising a listing of coordinate references for the beam; sorting the listing by an angular position to establish a scanning pattern for the beam; profiling the beam with a variable aperture to produce a variable area profiled beam; scanning the beam over a predetermined area of the corneal surface according to the sorted listing in the treatment table; displacing the beam from the center of rotation; varying the angular position of the beam to cause the beam to describe a path referenced to the center of rotation; and varying the area profiled beam during the step of scanning.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. No. 09/730,072 (Attorney Docket No. 18158-001830/VX-1045-3US), filed Dec. 5, 2000, and claimed priority from, co-pending U.S. patent application Ser. No. 08/968,380 (Attorney Docket No. 18158-001810/VX-1045-1US), filed Nov. 12, 1997, (now U.S. Pat. No. 6,203,539), which was a continuation of U.S. patent application Ser. No. 08/058,599 (Attorney Docket No. 18158-001800/VX-1045US), filed May 7, 1993, (now abandoned), the full disclosures of which are incorporated herein by referenced in their entirety.
Continuations (1)
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Number |
Date |
Country |
Parent |
09730072 |
Dec 2000 |
US |
Child |
10831709 |
Apr 2004 |
US |