This invention concerns the autostereoscopic display which can especially observe the stereoscopic vision by the naked eye for the autostereoscopic display.
The lenticular method, the parallax barrier method, the integral photography method, and the holography method, etc are known as a method of displaying the stereoscopic vision which can be observed by the naked eye.
Lens sheet 101 where the convex lens is arranged like the array is set up in front of display 106 as shown in
When the pixel on display 106 is very small compared with the lens, and the pixels at the position of white circle 1502 shown in
When observer 1501 observes this field of view 1503 shown in
Moreover, the lenticular method that achieves the stereoscopic effect only in horizontal direction by using binocular parallax exist, too, in the way the lenticular lens sheet with half cylinder shaped lenticular lens is set up in front of display 106 instead of the convex lens, and the slender images for the right eye and the left eye which are alternately arranged along the longitudinal direction of the lenticular lens are displayed in display 106. In these methods, the image displayed on display 106 is generated with image generation device 1504 for the binocular vision shown in
PC which generates computer graphics, multi eye camera, and single eye type cameras combined with lens sheet, etc. are enumerated as image generation device 1504 for the binocular vision.
The technology concerning the lenticular method is indicated in a past technology.
The technology, which makes the non-luminescence area (black matrix) between pixels unremarkable by devising the arrangement of the pixel on the display, is indicated in JP3101521B (hereafter, patent document 1).
The technology, which makes the black matrix between pixels unremarkable by expanding each pixel with the lens, is indicated in JP2540999B (hereafter, patent document 2).
The technology, which makes the black matrix between pixels unremarkable by installing diffusion board 102 between display 106 and lenticular lens sheet 101 as shown in
The technology, which avoids unnatural binocular vision caused when the light which penetrates a pixel passes through the lenticular lens that is not correctly associated with the pixel by inserting the shading film between each lenticular lenses of the lenticular lens sheet, and the street in the lenticular lens which is not the lenticular lens that light, which penetrates the pixel, is correctly associated with the pixel, is indicated in JP289320B (hereafter, patent document 4).
The technology, which had been described to patent document 1, changed the arrangement of the pixel on the display, and it had the problem that the cost of execution rose because it was not able to use a general purpose display.
The technology, which had been described to patent document 2, had the problem that the cost of execution rose, because a lot of numbers of lenses which expanded the pixel were necessary.
The technology, which had been described to patent document 3, had the problem that the reproduced stereoscopic vision blotted by the color of each pixel mixing with the color of the next pixel.
There were problems in the technology of the description to patent document 4. First problem is that black matrix between pixels stands out by being expanded with lens. Second problem is that assumed color cannot be shown to the observer by the Red and the Green and the Blue each display part's of each subpixel being expanded, and causing the color separation.
The assumed color cannot be shown to the observer by The Red and the Green and the Blue each display part's of each subpixel being expanded, and causing the color separation.
The purpose to use diffusion board 102 is, before the ray reaches lens seat 101, for instance, to avoid the color separation, by mixing three primary colors that red subpixel 107Ra, green subpixel 107Ga, and blue subpixel 107Ba of pixel 107a.
However, there is a problem that it mixes by three primary colors of the adjoining pixel such as Blue subpixel 107Ba of pixel 107a and red subpixel 107Rb of pixel 107b, and the color of the reproduced stereoscopic vision blots in a past technology. Therefore, the composition, in which the mixture of three primary colors of the adjoining pixel is canceled, is needed.
Then, the purpose of this invention is to offer the autostereoscopic display where the phenomenon that a black matrix and the color separation stand out with the lens is not caused and the phenomenon that the reproduction stereoscopic image blots by the mixture of the color of the pixel is not caused so far according to an easy composition.
In this invention, in the past autostereoscopic display shown
Moreover, it was assumed the composition in which the angle of cut achieved the total reflection of incident light of each pixel from inside of diffusion board 102 to the oblique side of the cut. In addition, it was assumed the composition in which the angle of cut achieved the total reflection of incident light of each pixel from inside of diffusion board 102 to the oblique side of the cut
Hereafter, it explains the embodiments of this invention with reference to the drawings.
[Embodiment 1]
Hereafter, it explains embodiment 1 of executing this invention by using
In the embodiment all, the point part of the cut may not be the pointed one, may have width, and worn roundness. Moreover, the cut of the embodiment all is an isosceles triangle whose perpendicular lowered from the cut toward the display passes center of the black matrix between pixels; however, the requirement need not be strictly met.
Display 106 is the one that two or more pixels such as pixel 107a, 107b, and 107c are spread.
Pixel 107a consists of red subpixel 104Ra, green subpixel 104Ga, blue subpixel 104Ba, and black matrix 105 which is the non-display part between each subpixel.
Diffusion board 102 has cut 103 put from 106 sides in the same width as the width of black matrix 105 at the position of each black matrix 105 between each pixel on the display, and the cut angle of each cut 103 is a total reflection angle as for incidence light from the inside of the diffusion board of each pixel to the oblique side of cut 103.
Length of the short side of each three primary color display part R, G, and B is assumed to be p1, and length of the long side is assumed to be p2. The width of black matrix 105 in the direction of the short vicinity of each three primary color display part R, G, and B is assumed to be d1, and the width of black matrix 105 in the direction of the vicinity of length is assumed to be d2.
In the each embodiment, it is assumed p1=35.5 μm, p2=143 μm, d1=28 μm, and d2=47.5 μm.
It explains the shape of cut 103 in this embodiment in detail by using
In
θM=arc sin (1/n) [Formula 1]
θo=(180−θDP)/2 [Formula 2]
In the embodiments, it becomes θo=20° assuming display viewing angle θDP=140°.
In
φ≧2(θM−θDP) [Formula 3]
Moreover, height h of cut 103 with this angle φ is given by next formula (4).
h=d/{2 tan (φ/2)} [Formula 4]
It is φ>32.06°, and when assuming φ=32.1° for instance, it becomes h=48.66 μm in this embodiment because of d=d1=28 μm.
Angle φ′ of cut 703 for the total reflection of all the ray of light incident on to the oblique side of cut 703 only has to fill “φ′>32.06°” in
Because the above mentioned formula consists similarly, when assuming d′ ( width of the cut 703)=d2=47.5 μm, φ′=32.1°, it becomes h′ (height of the cut 703)=82.55 μm.
Hereafter, it explains the modified embodiment of the embodiment 1 by using
[Modified Embodiment 1 of the Embodiment 1]
In
Φ=2 arc tan (d/2h) [Formula 5]
It becomes angle φ=19.85° of cut 903 in
Moreover, angle θ1 that ray 909 of the total reflection in the oblique side of cut 903 and display 106 form should fill next formula (6).
θ1≧θM−φ/2 [Formula 6]
As a result, θ1>26.11° can be filled, and all entire ray incidences to the oblique side of cut 903 can be reflected.
[Modified Embodiment 2 of the Embodiment 1]
It is assumed height h=80 μm of the cut and width d=18 μm<d1 of the cut here.
In
In this modified embodiment, the mixture of the color of the pixel is reduced by enlarging the height of the cut, and increasing an incidence ray to the oblique side of the cut, and the image quality of the reproduction stereoscopic image can be improved.
Moreover, because the effect of the improvement is achieved even if the width of the cut is reduced more than the width of a black matrix, accuracy, by which the cut is put, need not be strict.
[Modified Embodiment 3 of the Embodiment 1]
It explains the modified embodiment 3 by using
This modified embodiment is an example of explaining the effect when height h of the cut and the angle φ of the cut are set by priority.
d=2 h tan (φ/2) [Formula 7]
It becomes width d=46.03 μm>d1 of cut 1103a in
At this time, because a part of red subpixel 104Rb and blue subpixel 104Ba becomes arrangement which comes out in cut 1103a, it goes out of red subpixel 104Rb, it goes out of incidence ray 1109 and blue subpixel 104Ba from the inside of cut 1103a to the oblique side of cut 1103a, incidence ray 1107 exists from the inside of cut 1103a in the oblique side of cut 1103a, and they do an incidence reflection and the refraction penetration to the oblique side of cut 1103b of the next.
In this modified embodiment, by making the height of the cut enlarged, and an incidence ray to the oblique side of the cut increased, in addition, making the angle of the cut full reflection of all incident light, the mixture of the color of the pixel is reduced, and the image quality of the reproduction stereoscopic image can be improved.
Moreover, because the effect of the improvement is achieved even if the width of the cut is enlarged more than the width of a black matrix, accuracy, by which the cut needs not be strict.
[Modified Embodiment 4 of the Embodiment 1]
It explains the modified embodiment 4 by using
arc sin{(1/n) sin(θo−φ/2)}+φ≧θM [Formula 8]
It is φ>34.37°, and when assuming φ=34.38° for instance, it becomes d=49.5 μm>d1 from formula (8) in this modified embodiment. In this modified embodiment, the height of the cut is enlarged and an incidence ray is increased to the oblique side of the cut, in addition, the angle of the cut in going out of the part of the display in the cut and making an incidence ray the oblique side of the cut from the inside of the diffusion board angling of the total reflection once all including the ray which does the refraction penetration (It goes out of the part of the display in the cut and because strength of light is weak, the ray, which reflects in the oblique side of the cut, is disregarded). The mixture of the color of the pixel is reduced, and the image quality of the reproduction stereoscopic image can be improved.
[Embodiment 2]
Hereafter, it explains the embodiment 2 of the invention by using
Moreover,
Moreover,
Moreover,
The shading layer is formed to the cut, the mixture of the color of the pixel is reduced, and the image quality of the reproduction stereoscopic image can be improved in this execution example above.
[Embodiment 3]
Hereafter, it explains the embodiment 3 of the invention by using
Moreover,
Moreover,
Moreover,
The reflection layer is formed to the cut, the mixture of the color of the pixel is reduced, and the image quality of the reproduction stereoscopic image can be improved in this embodiment.
In setting up the diffusion board which puts the cut along the black matrix between pixels between the display and the lens sheet according to the each embodiment, As a black matrix and the color separation do without conspicuous. The blot of the color of the reproduction stereoscopic image by the color of the pixel which is mutually adjacent mixing can be improved.
According to this invention above, the phenomenon that a black matrix and the color separation stand out with the lens is not caused because the pixel is separated mutually though three primary colors of each pixel are diffused, moreover, the reproduction stereoscopic image does not cause the phenomenon in which blotting by the mixture of the color of the pixel, and be able to display a <high-resolution> stereoscopic image.
Number | Date | Country | Kind |
---|---|---|---|
2005-029017 | Feb 2005 | JP | national |