Method for Providing to an Eye of a Wearer a Customizable Ophthalmic Lens and Associated Active System of Vision
Abstract
Providing to an eye a customizable ophthalmic lens comprising a transparent set of electroactive cells ( 24 ) juxtaposed to a lens surface for providing an optical phase-shift distribution function. The method includes providing ( 402 ) a reference phase-shift distribution function adapted to provide a given dioptric function DF(α, β); determining ( 404 ) the actual gaze direction (α a , β a ); choosing ( 406 ) a reference gaze direction (α R , β R ); calculating ( 408 ) an actual point P a at the intersection between the actual gaze direction and the transparent set of electroactive cells, and a reference point P R at the intersection between the reference gaze direction and the transparent set of electroactive cells; calculating ( 410 ) a modified phase-shift distribution function by shifting the reference phase-shift distribution function according to a vector {right arrow over (P R P a )}; and activating ( 412 ) the electroactive cells according to the modified phase-shift distribution function.
Claims
exact text as granted — not AI-modified1 . A method for providing to an eye of a wearer a customizable ophthalmic lens comprising a transparent set of electroactive cells juxtaposed to a surface of the said lens, said set of cells being activable and suitable for providing an optical phase-shift distribution function, every electroactive cell having dimensions such that it can be fully comprised in a 70 μm diameter circle, the method comprising the steps of:
providing a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DF(α, β), said reference phase-shift distribution function being expressed with respect to a reference point PR, the reference phase-shift function having a null gradient at said reference point PR;
determining the actual gaze direction (α a , β a ) of the eye of the wearer when wearing the customizable ophthalmic lens;
choosing a reference gaze direction (α R , β R ) for positioning said reference point PR;
calculating an actual point P a and the reference point PR, said actual point Pa being the intersection between the actual gaze direction of the eye of the wearer and the transparent set of electroactive cells and said reference point PR being located at the intersection between the reference gaze direction of the eye of the wearer and the transparent set of electroactive cells;
calculating a modified phase-shift distribution function by shifting the reference phase-shift distribution function according to a vector; and
activating the electroactive cells according to said modified phase-shift distribution function so as to provide a customized ophthalmic lens to the eye of the wearer.
2 . The method for providing to an eye of a wearer a customizable ophthalmic lens according to claim 1 , wherein said method further comprises the steps of:
providing a plurality of reference phase-shift distribution functions adapted to provide to the wearer a plurality of given dioptric functions DFn(α, β); and choosing a reference phase-shift distribution function among the plurality of reference phase-shift distribution functions depending on the actual gaze direction (αa, βa) of the eye of the wearer when wearing the customizable ophthalmic lens.
3 . The method for providing to an eye of a wearer a customizable ophthalmic lens according to claim 1 , wherein said method further comprises the steps of:
providing a plurality of reference phase-shift distribution functions adapted to provide to the wearer a plurality of given dioptric functions DF n (α, β); determining an actual viewing distance of the eye of the wearer; and choosing a reference phase-shift distribution function among the plurality of reference phase-shift distribution functions depending on the actual viewing distance of the eye of the wearer.
4 . The method for providing to an eye of a wearer a customizable ophthalmic lens according to claim 1 , wherein a reference phase-shift distribution function is chosen from among a list of a plurality of reference phase-shift distribution functions consisting of: at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFNV(α, β) suitable for near vision, at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFFV(α, □) suitable for far vision, at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFIV(α, □) suitable for intermediate vision.
5 . The method for providing to an eye of a wearer a customizable ophthalmic lens according to claim 3 , wherein said method further comprises the steps of:
providing at least three reference phase-shift distribution functions adapted to provide to the wearer a given dioptric functions respectively suitable for near vision DFNV(α, β), suitable for intermediate vision DFIV(α, β) and suitable for far vision DFFV(α, β); determining an actual viewing distance of the eye of the wearer; and choosing a reference phase-shift distribution function among the at least three reference phase-shift distribution functions depending on the actual viewing distance of the eye of the wearer such that:
if the actual viewing distance of the eye of the wearer is in a first range, the reference phase-shift distribution functions adapted to provide to the wearer a given dioptric functions respectively suitable for near vision DF NV (α, β) is chosen;
if the actual viewing distance of the eye of the wearer is in a second range greater than the first range, the reference phase-shift distribution functions adapted to provide to the wearer a given dioptric functions respectively suitable for intermediate vision DF IV (α, β) is chosen; and
if the actual viewing distance of the eye of the wearer is in a third range greater than the second range, the reference phase-shift distribution functions adapted to provide to the wearer a given dioptric functions respectively suitable for far vision DF FV (α, β) is chosen.
6 . The method for providing to an eye of a wearer a customizable ophthalmic lens according to claim 1 , wherein the actual gaze direction (α a , β a ) of the eye of the wearer when wearing the customizable ophthalmic lens is determined by tracking the pupil of the eye of the wearer thanks to an eye-tracker device.
7 . A computer program product comprising one or more stored sequence of instructions that is accessible to a processor and which, when executed by the processor, causes the processor to carry out the steps of claim 1 .
8 . A computer readable medium storing one or more sequences of instructions of the computer program product of claim 7 .
9 . An active system of vision for an eye of a wearer, said active system of vision being adapted to be disposed in front of an eye of a wearer and comprising:
a customizable ophthalmic lens comprising a transparent set of electroactive cells juxtaposed to a surface of said lens, said set of cells being activable and suitable for providing an optical phase-shift distribution function, every electroactive cell having dimensions such that it can be fully comprised in a 70 μm diameter circle; a device adapted for determining the actual gaze direction (α a , β a ) of the eye of the wearer when wearing the customizable ophthalmic lens; a processor operatively connected to the transparent set of electroactive cells and to the device, wherein the processor is configured to: provide a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DF(α, β), said reference phase-shift distribution function being expressed with respect to a reference point PR, the reference phase-shift function having a null gradient at said reference point P R ; choose a reference gaze direction (α R , β R ) for positioning said reference point P R ; receive electrical signals dependent on the actual gaze direction of the eye from said device; calculate an actual point P a and the reference point P R , said actual point P a being the intersection between the actual gaze direction of the eye of the wearer and the transparent set of electroactive cells and said reference point P R being located at the intersection between the reference gaze direction of the eye of the wearer and the transparent set of electroactive cells; calculate a modified phase-shift distribution function by shifting the reference phase-shift distribution function according to a vector {right arrow over (P R P a )}; and activate the electroactive cells according to the said modified phase-shift distribution function so as to provide a customized ophthalmic lens to the eye of the wearer.
10 . The active system of vision according to claim 9 , further comprising another device adapted for measuring the actual viewing distance of the eye of the wearer when wearing the customizable ophthalmic lens.
11 . The active system of vision according to claim 10 , wherein said another device comprises a telemeter adapted to measure the actual viewing distance of the eye of the wearer when wearing the customizable ophthalmic lens.
12 . The active system of vision according to claim 9 , wherein a reference phase-shift distribution function is chosen from among a list of a plurality of reference phase-shift distribution functions consisting of: at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFNV(α, β) suitable for near vision, at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFFV(α, β) suitable for far vision, at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFFV(α, β) suitable for far vision, at least a reference phase-shift distribution function adapted to provide to the wearer a given dioptric function DFIV(α, β) suitable for intermediate vision.
13 . The active system of vision according to claim 9 , wherein said device is disposed on a face of the transparent set of electroactive cells facing the eye.
14 . The active system of vision according to claim 9 , wherein:
said customizable ophthalmic lens further comprises another transparent set of electroactive cells juxtaposed to a surface of the said lens, said set of cells being suitable for providing another optical phase-shift distribution function; the transparent set of electroactive cells and the another transparent set of electroactive cells are superimposed according to an optical axis of the lens; the combination of the optical phase-shift distribution function provided by the transparent set of cells and the another optical phase-shift distribution function provided by the another transparent set of cells is adapted to provide to the wearer a resultant dioptric function; and the projection of the transparent set of electroactive cells on a surface perpendicular to the optical axis do not coincide with the projection of the another transparent set of electroactive cells on said surface perpendicular to the optical axis, such that boundaries between some of the cells adjacent to one of the transparent set of cells cut cells of the another transparent set of cells in the projection.
15 . The active system of vision according to claim 9 , wherein:
the transparent sets of electroactive cells is formed by a network of walls, a set of each point forming a center of one of the cells is an irregular set of points in the surface of the lens; and a position and an orientation of each wall are determined such that the set of cells forms a Voronoï partition of the surface of the lens.Join the waitlist — get patent alerts
Track US2015185504A1 — get alerts on status changes and closely related new filings.
We store only your email — no account needed. See our privacy policy.