IP Library › Granted Patent US 10,437,077
Granted Patent B2
US 10,437,077 · App. 15/128,767 · Granted Oct 8, 2019

Method of optimizing geometry of a semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses

Inventors: Andrew Woodland (Woodcroft, AU); Jonathan Deeds (Monument, CO)
Assignees: CARL ZEISS VISION INC.; CARL ZEISS VISION INTERNATIONAL GMBH
G02C7/028G02C7/02G02C7/027G02C2202/08
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Quick Facts
Patent No.
US 10,437,077
App. No.
15/128,767
Granted
Oct 8, 2019
Kind
B2
Abstract

The present invention provides a method, a system, and a computer program code for optimizing geometry of at least one semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses having a designated lens material, each of the semi-finished ophthalmic lenses in the set having an Initially determined geometry including one of a plurality of base curves determined to allow manufacture of finished ophthalmic lenses for ophthalmic lens prescriptions.

Claims (30)

1. A method of optimising geometry of at least one semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses having a designated lens material, each of the semi-finished ophthalmic lenses in the set having an initially determined geometry including one of a plurality of base curves determined to allow manufacture of finished ophthalmic lenses for ophthalmic lens prescriptions, the method comprising:

electronically providing prescription data indicative of ophthalmic lens prescriptions of a plurality of ophthalmic lens wearers;

electronically determining a proportion of ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set of semi-finished ophthalmic lenses;

electronically providing manufacturing data indicative of constraints affecting manufacture of the set of semi-finished ophthalmic lenses;

electronically determining one or more final geometries of the at least one semi-finished ophthalmic lens in the set by optimising the initially determined geometry of each of the semi-finished ophthalmic lenses in the set using the proportion of said ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set and the constraints, such that overall volume of material required for the semi-finished ophthalmic lenses in the set has been minimized; and

electronically outputting data indicative of the one or more final geometries.

2. A method as claimed in claim 1 , further including determining a proportion of ones of the ophthalmic lens prescriptions that correspond to each one of the one or more final geometries of the at least one semi-finished ophthalmic lens in the set.

3. A method as claimed in claim 2 , further including iteratively optimising the one or more final geometries of the at least one semi-finished ophthalmic lens in the set using the proportion of said ones of the ophthalmic lens prescriptions that correspond to each one of the one or more final geometries of the at least one semi-finished ophthalmic lens in the set.

4. A method as claimed in claim 1 , wherein the prescription data includes one or more of: frame shape, decentration, sphere power, cylinder power, addition power, prism power data, and axis data.

5. A method as claimed in claim 4 , further including determining a portion of ones of the sphere power and cylinder power of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses.

6. A method as claimed in claim 1 , wherein the initial geometry and the one or more final geometries include at least one of a thickness, diameter, front curve radius, and back curve radius.

7. A method as claimed in claim 1 , further including optimising the initially determined geometry of each of the semi-finished ophthalmic lenses in the set to minimise a volume of said designated lens material of the at least one semi-finished ophthalmic lens in the set.

8. A method as claimed in claim 1 , wherein the constraints include one or more of: a cost per different geometry of ones of the base curves of each of the semi-finished ophthalmic lenses in the set; a cost of the designated lens material; and a minimum thickness of the semi-finished ophthalmic lenses.

9. A method as claimed in claim 8 , wherein the cost per different geometry of ones of the base curves includes a cost per different diameter of ones of the base curves of each of the semi-finished ophthalmic lenses in the set and/or a cost per different back curve of each of the semi-finished ophthalmic lenses in the set.

10. A system for optimising geometry of at least one semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses having a designated lens material, each of the semi-finished ophthalmic lenses in the set having an initially determined geometry including one of a plurality of base curves determined to allow manufacture of finished ophthalmic lenses for ophthalmic lens prescriptions, the system comprising:

a providing module arranged to provide prescription data indicative of ophthalmic lens prescriptions of a plurality of ophthalmic lens wearers;

a processing module arranged to determine a proportion of ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set of semi-finished ophthalmic lenses;

the providing module further arranged to provide manufacturing data indicative of constraints affecting manufacture of the set of semi-finished ophthalmic lenses;

the processing module further including an optimising module arranged to determine one or more final geometries of the at least one semi-finished ophthalmic lens in the set by optimising the initially determined geometry of each of the semi-finished ophthalmic lenses in the set using the proportion of said ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set and the constraints, such that overall volume of material required for the semi-finished ophthalmic lenses in the set has been minimized; and

an output module arranged to output data indicative of the one or more final geometries.

11. At least one semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses having a designated lens material having an optimised geometry including one or more final geometries determined by implementing the method of claim 1 .

12. Computer program code usable to configure a server to implement a method of optimising geometry of at least one semi-finished ophthalmic lens in a set of semi-finished ophthalmic lenses having a designated lens material, each of the semi-finished ophthalmic lenses in the set having an initially determined geometry including one of a plurality of base curves determined to allow manufacture of finished ophthalmic lenses for ophthalmic lens prescriptions, the server being configured by the computer program code to provide functions comprising:

provide prescription data indicative of ophthalmic lens prescriptions of a plurality of ophthalmic lens wearers;

determine a proportion of ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set of semi-finished ophthalmic lenses;

provide manufacturing data indicative of constraints affecting manufacture of the set of semi-finished ophthalmic lenses;

determine one or more final geometries of the at least one semi-finished ophthalmic lens in the set by optimising the initially determined geometry of each of the semi-finished ophthalmic lenses in the set using the proportion of said ones of the ophthalmic lens prescriptions that correspond to each one of the base curves of the semi-finished ophthalmic lenses in the set and the constraints, such that overall volume of material required for the semi-finished ophthalmic lenses in the set has been minimized; and

output data indicative of the one or more final geometries.

13. Computer program code which when executed implements the method of claim 1 .

14. A tangible computer readable medium including the computer program code of claim 12 .

15. A data signal including either the program code of claim 12 or the data indicative of the one or more final geometries determined by execution of the computer program code of claim 12 .

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: CARL ZEISS VISION AUSTRALIA HOLDINGS LTD.
To: CARL ZEISS VISION INTERNATIONAL GMBH
Reel/Frame 047369/0821 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: WOODLAND, ANDREW
To: CARL ZEISS VISION AUSTRALIA HOLDINGS LTD.
Reel/Frame 047376/0207 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: DEEDS, JONATHAN
To: CARL ZEISS VISION INC.
Reel/Frame 047376/0342 →
Continuity (1)
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