Claims
- 1. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
representing said surfaces with parameters; choosing a function in said parameters, said function including a term involving the power induced by said ophthalmic lens and a predetermined power distribution, a term involving the astigmatism induced by said ophthalmic lens and a predetermined astigmatism distribution, and one or more of the following terms:
a term involving the magnification induced by said ophthalmic lens, a term involving the distortion induced by said ophthalmic lens, a term involving the distortion direction induced by said ophthalmic lens, a term involving the torsion induced by said ophthalmic lens, and a term involving the astigmatism direction induced by said ophthalmic lens; and optimizing said function with respect to said parameters.
- 2. The method of claim 1, wherein said term involving the magnification induced by said ophthalmic lens also involves a predetermined magnification distribution.
- 3. The method of claim 1, wherein said term involving the distortion induced by said ophthalmic lens also involves a predetermined distortion distribution.
- 4. The method of claim 1, wherein said term involving the distortion direction induced by said ophthalmic lens also involves a predetermined distortion direction distribution.
- 5. The method of claim 1, wherein said term involving the torsion induced by said ophthalmic lens also involves a predetermined torsion distribution.
- 6. The method of claim 1, wherein said term involving the astigmatism direction induced by said ophthalmic lens also involves a predetermined astigmatism direction distribution.
- 7. The method of claim 1, wherein said function includes a term related to the thickness of said ophthalmic lens.
- 8. The method of claim 1, wherein said function involves one or more weight distributions and the method further comprises:
determining said weight distributions from a database of weight functions using a predetermined rule.
- 9. The method of claim 1, wherein said function involves one or more weight distributions and the method further comprises: determining said weight distributions from a database of weight functions using an expert system.
- 10. The method of claim 9, wherein said expert system uses a neural network algorithm.
- 11. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
representing said surfaces with parameters; choosing a function in said parameters, said function involving one or more weight distributions and including a term involving the power induced by said ophthalmic lens and a predetermined power distribution and a term involving the astigmatism induced by said ophthalmic lens and a predetermined astigmatism distribution; determining said weight distributions from a database of weight functions using a predetermined rule; and optimizing said function with respect to said parameters.
- 12. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
representing said surfaces with parameters; choosing a function in said parameters, said function involving one or more weight distributions and including a term involving the power induced by said ophthalmic lens and a predetermined power distribution and a term involving the astigmatism induced by said ophthalmic lens and a predetermined astigmatism distribution; determining said weight distributions from a database of weight functions using an expert system; and optimizing said function with respect to said parameters.
- 13. The method of claim 12, wherein said expert system uses a neural network algorithm.
- 14. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
representing said surfaces with parameters; choosing a function in said parameters, said function including a term involving the gradient of an optical characteristic of said lens, said characteristic selected from a group including: power, astigmatism, astigmatism direction, magnification, distortion, torsion, and distortion direction; and optimizing said function with respect to said parameters.
- 15. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
representing said surfaces with parameters; choosing a function in said parameters, said function including a term involving the change in at least one optical characteristic induced by said lens due to a change in the objects to be viewed through said lens, wherein said at least one optical characteristic is selected from a group including: power, astigmatism, astigmatism direction, magnification, distortion, torsion, distortion direction and prism; and optimizing said function with respect to said parameters.
- 16. A method for designing one or more surfaces of an ophthalmic lens, the method comprising:
receiving a prescription of a specific wearer for said ophthalmic lens; representing said surfaces with parameters; choosing a function in said parameters, said function including a term involving the difference between the astigmatism induced by said ophthalmic lens and a predetermined astigmatism distribution related to said prescription, said predetermined astigmatism distribution describing difference astigmatism than that required by said prescription, and a term involving the difference between the power induced by said ophthalmic lens and a predetermined power distribution, without said predetermined power distribution and said predetermined power distribution necessarily representing jointly the astigmatism and power of a physically attainable lens; and optimizing said function with respect to said parameters.
CROSS REFERENCE
[0001] This application is a Continuation-in-Part application of U.S. application Ser. No. 09/584,715, filed on Jun. 1, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09584715 |
Jun 2000 |
US |
| Child |
10298288 |
Nov 2002 |
US |