HOLOGRAPHIC IMAGE PROJECTION WITH HOLOGRAPHIC CORRECTION
There is provided a method of projection using an optical element having spatially variant optical power. The method comprises combining Fourier domain data representative of a 2D image with Fourier domain data having a first lensing effect to produce first holographic data. Light is spatially modulated with the first holographic data to form a first spatially modulated light beam. The first spatially modulated light beam is redirected using the optical element by illuminating a first region of the optical element with the first spatially modulated beam. The first lensing effect compensates for the optical power of the optical element in the first region.
1 - 15 . (canceled)
16 . A method of encoding at least one spatial light modulator for use with a projection system comprising
the at least one spatial modulator; and
an optical combiner arranged to redirect light spatially modulated by the at least one spatial light modulator, the optical combiner having
a first region on a first optical path from the at least one spatial light modulator to a first viewing location, the first region having a first local curvature, and
a second region on a second optical path from the at least one spatial light modulator to a second viewing location, the second region having a second local curvature different from the first local curvature,
the method comprising:
performing a first encoding, comprising
providing first holographic data comprising a first lensing function, the first lensing function being adapted to compensate for the first local curvature of the first region of the optical combiner; and
encoding the at least one spatially light modulator with the first holographic data; and
performing a second encoding, comprising
providing second holographic data comprising a second lensing function different from the first lensing function, the second lensing function being adapted to compensate for the second local curvature of the second region of the optical combiner; and
encoding at least one the spatially light modulator with the second holographic data.
17 . The method of claim 16 , wherein the first lensing function negates at the first viewing location the first local curvature of the first region of the optical combiner, and/or the second lensing function negates at the second viewing location the second local curvature of the second region of the optical combiner.
18 . The method of claim 16 , wherein the first viewing location is a location of a first eye of a viewer; and the second viewing location is a location of a second eye of the viewer.
19 . The method of claim 16 , wherein the optical combiner is a vehicle windscreen.
20 . The method of claim 16 , wherein the redirection of light spatially modulated by the at least one spatial light modulator is a reflection.
21 . The method of claim 16 , wherein the projection system is adapted to provide at the first viewing location a view through the optical combiner overlapped with a first head-up display image; and to provide at the second viewing location a view through the optical combiner overlapped with a second head-up display image.
22 . The method of claim 21 , wherein the first head-up display image is the same as the second head-up display image.
23 . The method of claim 16 , wherein the second encoding is an adjustment of the projection system to dynamically compensate for a different viewing angle of the second viewing location as compared to a viewing angle of the first viewing location.
24 . The method of claim 16 , wherein the second encoding is an adjustment of the projection system to dynamically compensate for a difference between the first local curvature of the first region of the optical combiner as compared to the second local curvature of the first region of the optical combiner.
25 . The method of claim 16 , wherein the second encoding represents a dynamic response to a change.
26 . A projection system comprising
at least one spatial modulator; and
an optical combiner arranged to redirect light spatially modulated by the at least one spatial light modulator, the optical combiner having
a first region on a first optical path from the at least one spatial light modulator to a first viewing location, the first region having a first local curvature, and
a second region on a second optical path from the at least one spatial light modulator to a second viewing location, the second region having a second local curvature different from the first local curvature,
wherein the projection system is configured to
perform a first encoding, comprising
providing first holographic data comprising a first lensing function, the first lensing function being adapted to compensate for the first local curvature of the first region of the optical combiner; and
encoding the at least one spatially light modulator with the first holographic data; and
perform a second encoding, comprising
providing second holographic data comprising a second lensing function different from the first lensing function, the second lensing function being adapted to compensate for the second local curvature of the second region of the optical combiner; and
encoding at least one the spatially light modulator with the second holographic data.
27 . A method of projection for use with a projection system comprising
at least one spatial modulator; and
an optical combiner arranged to redirect light spatially modulated by the at least one spatial light modulator, the optical combiner having
a first region on a first optical path from the at least one spatial light modulator to a first viewing location, the first region having a first local curvature, and
a second region on a second optical path from the at least one spatial light modulator to a second viewing location, the second region having a second local curvature different from the first local curvature,
the method comprising
performing a first projection comprising
providing first holographic data comprising a first lensing function, the first lensing function being adapted to compensate for the first local curvature of the first region of the optical combiner; and
providing a first spatially modulated light beam to the first viewing location by a method comprising
using the at least one spatial light modulator to spatially modulate light with the first holographic data to form the first spatially modulated light beam;
illuminating the first region of the optical combiner with the first spatially modulated light beam; and
using the optical combiner to redirect the first spatially modulated light beam to the first viewing location; and
performing a second projection comprising
providing second holographic data comprising a second lensing function different than the first lensing function, the second lensing function being adapted to compensate for the second local curvature of the second region of the optical combiner; and
providing a second spatially modulated light beam to the second viewing location by a method comprising
using the at least one spatial light modulator to spatially modulate light with the second holographic data to form the second spatially modulated light beam;
illuminating the second region of the optical combiner with the second spatially modulated light beam; and
using the optical combiner to redirect the second spatially modulated light beam the second viewing location.
28 . The method of claim 27 , wherein the first lensing function negates at the first viewing location the first local curvature of the first region of the optical combiner, and/or the second lensing function negates at the second viewing location the second local curvature of the second region of the optical combiner.
29 . The method of claim 27 , wherein the first viewing location is a location of a first eye of a viewer; and the second viewing location is a location of a second eye of the viewer.
30 . The method of claim 27 , wherein the optical combiner is a vehicle windscreen.
31 . The method of claim 27 , wherein the redirection of light spatially modulated by the at least one spatial light modulator is a reflection.
32 . The method of claim 27 , wherein the projection system is adapted to provide at the first viewing location a view through the optical combiner overlapped with a first head-up display image; and to provide at the second viewing location a view through the optical combiner overlapped with a second head-up display image.
33 . The method of claim 27 , wherein the first head-up display image is the same as the second head-up display image.
34 . The method of claim 27 , wherein the second projection results from an adjustment of the projection system to dynamically compensate for a different viewing angle of the second viewing location as compared to a viewing angle of the first viewing location.
35 . The method of claim 27 , wherein the second projection results from an adjustment of the projection system to dynamically compensate for a difference between the first local curvature of the first region of the optical combiner as compared to the second local curvature of the first region of the optical combiner.
36 . The method of claim 27 , wherein the second projection results from a dynamic response to a change from the first projection.
37 . A projection system comprising
at least one spatial modulator; and
an optical combiner arranged to redirect light spatially modulated by the at least one spatial light modulator, the optical combiner having
a first region on a first optical path from the at least one spatial light modulator to a first viewing location, the first region having a first local curvature, and
a second region on a second optical path from the at least one spatial light modulator to a second viewing location, the second region having a second local curvature different from the first local curvature,
wherein the projection system is configured to
perform a first projection comprising
providing first holographic data comprising a first lensing function, the first lensing function being adapted to compensate for the first local curvature of the first region of the optical combiner; and
providing a first spatially modulated light beam to the first viewing location by a method comprising
using the at least one spatial light modulator to spatially modulate light with the first holographic data to form the first spatially modulated light beam;
illuminating the first region of the optical combiner with the first spatially modulated light beam; and
using the optical combiner to redirect the first spatially modulated light beam to the first viewing location; and
perform a second projection comprising
providing second holographic data comprising a second lensing function different than the first lensing function, the second lensing function being adapted to compensate for the second local curvature of the second region of the optical combiner; and
providing a second spatially modulated light beam to the second viewing location by a method comprising
using the at least one spatial light modulator to spatially modulate light with the second holographic data to form the second spatially modulated light beam;
illuminating the second region of the optical combiner with the second spatially modulated light beam; and
using the optical combiner to redirect the second spatially modulated light beam the second viewing location.