US20070236809A1 - Forming spectral filters - Google Patents
Forming spectral filters Download PDFInfo
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- US20070236809A1 US20070236809A1 US11/398,376 US39837606A US2007236809A1 US 20070236809 A1 US20070236809 A1 US 20070236809A1 US 39837606 A US39837606 A US 39837606A US 2007236809 A1 US2007236809 A1 US 2007236809A1
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- wavelengths
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/30—Image reproducers
- H04N13/332—Displays for viewing with the aid of special glasses or head-mounted displays [HMD]
- H04N13/334—Displays for viewing with the aid of special glasses or head-mounted displays [HMD] using spectral multiplexing
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B30/00—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images
- G02B30/20—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes
- G02B30/22—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes of the stereoscopic type
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B30/00—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images
- G02B30/20—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes
- G02B30/22—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes of the stereoscopic type
- G02B30/23—Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes of the stereoscopic type using wavelength separation, e.g. using anaglyph techniques
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B5/00—Optical elements other than lenses
- G02B5/20—Filters
- G02B5/28—Interference filters
- G02B5/285—Interference filters comprising deposited thin solid films
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- G—PHYSICS
- G02—OPTICS
- G02C—SPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
- G02C7/00—Optical parts
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/30—Image reproducers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N13/00—Stereoscopic video systems; Multi-view video systems; Details thereof
- H04N13/30—Image reproducers
- H04N13/324—Colour aspects
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N2213/00—Details of stereoscopic systems
- H04N2213/008—Aspects relating to glasses for viewing stereoscopic images
Definitions
- This description relates to forming spectral filters.
- Stereoscopic projection commonly called three-dimensional (3D) projecting
- 3D three-dimensional
- polarizing filters are used to polarize the light from each projector orthogonally to the other.
- the viewer wears glasses with corresponding polarizing filters, so that each eye receives only light projected from the corresponding projector.
- the two images are each color-shifted, one into the red end of the visible spectrum and one into the blue end.
- the viewer wears glasses with red and blue filters, one for each eye, so that each eye sees only the image shifted into the corresponding color.
- the viewer's brain reassembles the two images into a single reduced-color image with the illusion of depth.
- Such a system also works with still images, which can be printed with the two color-shifted images overlaid.
- a third approach projects alternating images for each eye, and glasses, for example with LCD shutters, actively block the view of the eye opposite the image currently being projected.
- a lens bears a plurality of roll-coated layers to pass, to one eye of a viewer, a first image, in a first band of wavelengths, that is appropriate for 3D viewing of a stereoscopic image.
- the lens includes layers adhered to a substrate in a roll-coating process and having optical properties and thicknesses such that the combination of the layers transmits light within the first band of wavelengths and does not transmit light within a second band of wavelengths.
- the optical properties and thicknesses of the layers are such that the combination of the layers transmits light with a third and fourth band of wavelengths and combination of the layers transmits light with a third and fourth band of wavelengths and does not transmit light within a fifth and sixth band of wavelengths.
- a second lens bears a roll-coated layer to pass, to a second eye of a viewer, a second image, in a second band of wavelengths, that is complementary to the first image for 3D viewing of the stereoscopic image.
- the first band of wavelengths includes a band of wavelengths around 435 mn.
- the second band of wavelengths includes a band of wavelengths around 475 nm.
- the third band of wavelengths includes a band of wavelengths around 510 nm, the fourth band of wavelengths includes a band of wavelengths around 610 nm, the fifth band of wavelengths includes a band of wavelengths around 550 nm, and the sixth band of wavelengths includes a band of wavelengths around 660 nm.
- the lens includes a substrate sheet having curvature, the roll-coated layer having a generally uniform thickness normal to the sheet at points along the curvature.
- the curvature is such that when the lens is positioned near a person's face, points along a surface of the lens, in one plane, are a relatively uniform distance from the eye of the viewer.
- the curvature has a radius of curvature such that when the lens is positioned near a person's face, the radius is approximately equal to the distance between the coating and the center of the eye.
- the radius of curvature is between about 1 ⁇ 2 inch and 4 inches.
- a set of glasses includes a frame to hold two lenses.
- a first lens includes a roll-coated filter to pass light in a first set of bands of wavelengths and reflect light in a second set of bands of wavelengths.
- a second lens includes a roll-coated filter to pass light in a portion of the second set of bands of wavelengths and reflect light in a portion of the first set of wavelengths.
- glasses to view a stereoscopic image include a first lens bearing a roll-coated optical layer to pass, to one eye of a viewer, a first image that is appropriate for 3D viewing of the stereoscopic image.
- a second lens bears a roll-coated optical layer to pass, to a second eye of a viewer, a second image that is complementary to the first image for 3D viewing of the stereoscopic image.
- glasses to view a 3D frame or video presentation include a supporting structure and a pair of curved lenses. Each lens bears layers having a substantially constant thickness normal to a surface of the lens. The layers are configured to filter images of the presentation projected in two non-overlapping bands of wavelengths of light as they are viewed through the lenses, to produce a 3D impression for a viewer the lenses each having a radius of curvature between about 1 ⁇ 2 inch and 4 inches.
- a first lens includes roll-coated layers of materials selected to transmit light having a first set of wavelengths
- a second lens includes roll-coated layers of materials selected to transmit light having a second set of wavelengths.
- a lens passes, to one eye of a viewer, a first image, in a first wavelength, that is appropriate for 3D viewing of a stereoscopic image.
- a second lens passes, to a second eye of the viewer, a second image, in a second wavelength, that is complementary to the first image for 3D viewing of the stereoscopic image.
- the lens includes a substrate sheet and a layer having stress, in which the curvature of the lens is a result of the stress.
- the first and second lenses are arranged so that when worn by a viewer while viewing a projection on a domed screen, light from any point on the dome passes through each lens at an angle of incidence near perpendicular to the surface of the lens.
- alternating layers of at least a first and second material having different optical properties are roll-coated onto a substrate.
- Alternating layers of at least the first and second materials are roll-coated onto a second substrate. Thicknesses of the layers are selected so that in combination, the layers on the first substrate will transmit light having a first set of wavelengths and not transmit light having a second set of wavelengths, and the layers on the second substrate will transmit light having the second set of wavelengths and not transmit light having the first set of wavelengths.
- a portion of each of the first and second coated substrates is removed, and the portions are assembled into a frame configured to position the portions, one near each eye of a wearer when the frame is worn on the head of the wearer.
- the first material is Silicon Dioxide (SiO2).
- the second material is Niobium Pentoxide (Nb2O5), Titanium Dioxide (TiO2) or Tantalum Pentoxide (Ta2O5).
- a property of at least one layers is selected so that the combination of the layers has a stress, in which the stress substrate to form a first lens, a second piece is cut from the second coated substrate to form a second lens, and the first and second lenses are arranged to form a set of glasses.
- Advantages include the ability to manufacture lenses for a large number of glasses in a single process and for low per-item cost. Lenses can be curved to properly filter the complete field of view of the wearer.
- FIG. 1 is a block diagram of a projector.
- FIGS. 2A-2G and 6 are spectral graphs.
- FIG. 3 is a block diagram of a roll-coating machine.
- FIG. 4 is a table describing a coating design.
- FIG. 5A is a sectional top view of glasses on a wearer's head.
- FIGS. 5B and 5F are perspective view of glasses on a wearer's head.
- FIGS. 5C and 5D are sectional plan views of lenses and eyes.
- FIG. 5E is a sectional side view of glasses on a wearer's head.
- FIG. 6 shows calculation of crosstalk for right eye image, left-eye lens
- FIG. 7 is a perspective view of a lens and an eye.
- a full-color image is created by generating three single-color component images that are simultaneously or sequentially projected to resolve into a single, full-color image when viewed by the audience.
- a single imaging device 102 produces the component images based on an incoming video stream 103 using light received from a color wheel 104 that rotates red, green, and blue filters into the path of light 106 projected from a spread-spectrum (white) light source 108 , producing colored light 106 C.
- the light sources include a bulb 116 , a reflector 118 , and a homogenizing device 120 .
- the homogenizing device 120 for example, a light pipe, makes sure that the light reaching the color wheel 104 is uniform in brightness and color.
- the imaging device 102 could be a reflective device, such as a DLP light valve, or a transmissive device, such as an LCD panel (with appropriate changes to the layout of the projection system 100 ).
- the filtered and imaged light 1061 is then focused by a lens 110 onto a projection screen 112 , to be seen by a viewer 114 .
- the imaging source 102 and color wheel 104 switch between component images and colors at the proper rate, the viewer 114 will perceive a single, full-color image.
- the imaging device must produce at least 90 single-color frames per second.
- the actual rate will depend on the frame-rate of the source material, the number of color segments in the wheel 104 , and the rate at which the wheel spins. For example, some projectors have more than three segments and spin the wheel 2, 4, or 8 times faster than the minimum needed, according to the number of segments.
- three separate colored light sources are used or three imaging devices are used, one for each color.
- Each of these approaches can be combined with the others in various ways, for example, to project all three color components simultaneously.
- FIGS. 2A and 2D show example sets of filtered color bands for two commonly used light sources. Xenon lamps are commonly used in cinema projection, while UHP (ultra high performance) mercury arc lamps are commonly used in home projectors.
- Images for the left eye are filtered inside the projector into bands 202 L, 204 L, and 206 L, shown separately in FIGS. 2B and 2E
- images for the right eye are filtered inside the projector into bands 202 R, 204 R, and 206 R, shown separately in FIGS. 2C and 2F
- the intensity values are normalized to 100 representing the potential intensity of unfiltered light.
- the transmission rates of the filters, independent of light source, are shown in FIG. 2G Filters in the viewer's glasses transmit the appropriate bands for each eye, while blocking the bands used for the other eye. For good image separation, the bands for the left and right eye should not overlap,
- a similar projection system to that shown in FIG. 1 can be used.
- the color filter wheel 104 has six, corresponding to the six bands 202 L, 204 L, 206 L, 202 R, 204 R, and 206 R.
- the three-color wheel can still be used, with a second filter or set of filters used to split each color into the two appropriate bands.
- the image source produces six images per frame, i.e., red, blue, and green components for each eye.
- the viewer 114 wears glasses 116 with filters that allow each eye to see the three bands used for the corresponding image.
- Such a system has advantages of providing a full-color stereoscopic image over a wider viewing angle than systems using polarized light.
- the viewer wears glasses with lenses including filters that allow each eye to see the three color-bands used for the corresponding image and not those used for the complementary image meant for the other eye.
- One way to produce such a lens uses a batch-coating process to produce each lens as a distinct unit.
- Roll-coating can produce complex optical filters inexpensively on thin, flexible substrates.
- a roll-coating process involves coating a series of thin layers of different materials on a substrate. Whereas a batch process typically coats on individual, small pieces of glass or plastic that are not flexible, the roll coating process can deposit coatings onto a roll of flexible plastic web that is continuously passing through the coating chamber.
- One substrate material that may be used is PET (polyethylene terephthalate), because of its strength, low outgassing, high heat resistance, and low cost.
- the PET substrate can be approximately 0.005′′ to 0.015′′ thick.
- the width of the substrate is typically about 1 foot to 6 feet.
- Other possible substrate materials include polycarbonate, polymethyl methacrylate and transparent polyimide. Thin rolls of these polymeric materials are flexible enough to be bent around a radius of approximately 1′′ without stress failure.
- a large roll 300 of the plastic film to be used as a substrate is mounted on one end of the machine.
- the substrate 302 is fed through a vacuum lock 304
- a large roll 300 of the plastic film to be used as a substrate is mounted on one end of the machine.
- the substrate 302 is fed through a vacuum lock 304 into the coating chamber 306 which is kept at low pressure.
- a transport mechanism 308 moves the substrate 302 through the coating chamber 306 , thin layers of optical materials are sputtered or evaporated onto the substrate 302 as it passes in front of successive deposition zones 310 with sputter or evaporation targets 312 .
- the substrate 302 is stretched over a large drum 314 during deposition so that it stays flat and the heat of deposition can be removed through the drum.
- the substrate then passes through another vacuum lock 304 and is wound onto another roll 316 .
- a new roll 300 can be spliced onto the end of a previous roll that runs out.
- the machine may be designed to be run without stopping until maintenance is needed. Typical maintenance includes replacing sputter or evaporation targets 312 , cleaning shields 318 , and replacing worn-out equipment.
- the substrate 302 may need to be run through the machine multiple times. Back and forth motion of the substrate through the deposition zones can be used if the plastic-film transport mechanism 308 allows it.
- the rolls can weigh up to several hundred pounds each and can be many thousands of feet long. Because roll coating can be performed continuously without breaking vacuum or needing lengthy pump-down each time substrates are loaded, the throughput of roll coating can be much higher than batch processing and the resultant cost of roll coating can be much lower.
- individual pieces are cut out of the substrate and assembled into glasses. The individual pieces can be used as lenses themselves, held in place by the frame of the glasses, or they can be laminated onto more substantial glass or plastic lenses.
- Each of the layers of optical material has certain optical properties (e.g., alternating layers of high refractive index and low refractive index), and the combination of the layers is designed to produce the filtering characteristics desired for a particular application.
- the goal is to have a high transmission of the bands for each eye and high rejection of other light, including the bands used for the opposite eye, as shown in FIGS. 2B and 2C .
- FIG. 2B shows the transmission rate in the three bands 202 L, 204 L, and 206 L used for the left eye
- FIG. 2C shows the transmission rates in the three bands 202 R, 204 R, and 206 R used for the right eye.
- the steep sides of the peaks representing the bands are desirable to reduce any bleeding over of light from the complementary bands, a problem referred to as cross-talk.
- Table 400 lists the materials in column 402 and their thicknesses in columns 404 and 406 .
- the calculated spectral performance of the thicknesses listed in column 404 , for the left eye, is the basis of FIG. 2B .
- the spectral curve of the coating can be shifted to longer wavelengths to make the corresponding filter for the right eye, as shown in column 406 and FIG. 2C .
- the amount of the shift in wavelength is equal to the amount of increase in coating thickness, so the amount should be selected to shift each pass band 202 L, 204 L, 206 L far enough that the shifted bands 202 R, 204 R, 206 R do not overlap the original ones.
- average transmission in the pass-bands 202 L, etc. should be approximately 80% or greater, and the average transmission in the blocking bands, that is, for wavelengths outside the pass-bands, should be approximately 0.5% or less.
- the slopes of the band edges, e.g., edge 207 in FIG. 2G , between the points 209 , 211 where 20% and 80% of the available light is transmitted for each pass-band, should be approximately 1% of the center wavelengths of the respective bands.
- slope we mean the spacing of the endpoints of a transition band between a pass band and a stop band as a percentage of the width of the center of the wavelength band.
- the wavelength tolerance of each band should be less than approximately 2% on either side of the nominal center wavelength of the band.
- Filters made by this process can be used in both the glasses worn by a viewer and as the filters within the projector itself, with appropriate adjustments made for the geometry of the projector, for example, if light is incident on the filters at some angle other than zero degrees within the projector.
- the filters used for the glasses can easily be curved into a cylindrical shape, as shown in FIG. 5A . Once shaped, the filters can be held in the desired shape by the frame 510 of the glasses 500 . Alternatively, they could be laminated onto a glass or plastic lens having the desired shape.
- This flexibility provides an advantage over batch-coated processes, as it allows a uniform coating over a curved surface, since the surface is kept flat during the coating process.
- Roll coating using sputtering or evaporation is a directional coating process in which the material being deposited moves in a straight line from the source to the substrate. This results in a uniform coating on a flat surface with appropriate masking and process control.
- Thickness uniformity should be within about +/ ⁇ 2% to achieve the tolerances on bands discussed above.
- Other coating methods for example chemical vapor deposition, that can coat highly curved surfaces because they are non-directional tend to be expensive compared to sputtering or evaporation. Since roll-coating works with a flexible substrate, it allows inexpensive directional coating processes to be used to create curved lenses.
- Curved lenses 502 are positioned in glasses 116 so that they maintain a uniform distance D along their lengths from the center of the eyes 504 . As shown in FIGS. 5C and 5D , this helps prevent shifting of the transmitted wavelengths due to a changing angle of incidence (AOI) 505 (as measured between the incident light and a normal 507 from the lens 506 ) as the eyeball rotates to look through the left or right edges of the glasses.
- AOI angle of incidence
- Incident light 508 a , 508 b , and 508 c passes through the lens 502 to the eye at a relatively low AOI no matter which direction it is coming from.
- the AOI 505 of light 508 a and 508 c entering the lens 506 from the sides is high (whether the viewer rotates his eyes to the side or simply sees it through his peripheral vision), while the AOI of light 508 b entering the lens 506 from straight ahead is low.
- This will alter the frequencies admitted by the filter, as shown in FIG. 6 , resulting in a ghosting and degradation of the 3D effect at the edges of the viewer's field of view.
- the curvature of the lenses 502 may not be completely cylindrical, but might have a variable radius of curvature.
- the distance between the lens and the center of the eye should be relatively uniform, as compared to traditional flat or slightly curved lenses.
- each lens should have a curvature centered on the center of the eye and with a radius of curvature approximately equal to the distance from the lens to the center of the eye, for example, 1 ⁇ 2 inch for lenses very close to the eye, or as much as four inches for lenses situated farther from the eye.
- Slightly curved traditional lenses typically have radii of curvature of around twelve inches.
- Graph 600 shows cross-talk resulting from light passing through a flat lens at two different angles.
- Line 602 shows that at 0°, little of the light projected for the right-eye is admitted by a left-eye filter in the glasses.
- Line 604 shows that at 30° AOI, large peaks 606 , 608 of blue and green light are transmitted at specific wavelengths. Comparing the wavelength of these peaks to the left-eye bands 202 L and 204 L shown in FIG. 2B , one sees that, at this angle, the left eye will be receiving light meant for the right eye. With a curved lens, all the light reaching the eye has come through the lens at a low AOI no matter what direction it came from, preventing this cross-talk.
- a sputtered coating has compressive stress that contributes to a built-in curvature in the completed filter that is relatively low-stress compared to bending a substrate that starts flat.
- the built-in curvature can be adjusted to the proper curvature to maintain low AOI for all horizontal angles of eyeball motion.
- the built-in curvature may get the substrate part-way to the desired shape, so that the additional curvature that must be added does not stress the coating as much as it would if the substrate were naturally flat. If the distance between the filter and the center of the eyeball is 1′′, the radius of curvature of the film should also be 1′′.
- This natural radius can be achieved with a sputtered coating that is deposited with typical stress values and a polycarbonate substrate that is approximately 0.008′′ thick.
- a filter with a PET substrate of the same thickness and the same sputtered coating has a natural radius of approximately 3′′ because it is a stiffer substrate material, but this material can bent into the 1′′ radius without degradation to the coating.
- Experimental reduction of the spectral shift was confirmed for a large range of horizontal eyeball angles by building glasses based on the PET substrate bent into a 1′′ radius. Other curvatures may be used, for example, giving up some image quality to allow a more comfortable fit, or to fit over prescription eye wear.
- the curved lenses enabled by roll-coating the filters may be particularly advantageous in domed-screen or cylindrical-screen theaters.
- domed screens tend to require more eyeball motion than flat screens, and roll-coated coatings allow easy curvature of the glasses to reduce ghosting due to crosstalk between eyes.
- Domed screens allow objects to approach the viewer from the left and right in addition to the front, and a curved lens maintains the illusion of depth even for images in the viewer's peripheral vision.
- the filters could be configured to be attached to a wearer's existing eyeglasses.
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Abstract
Description
- This description relates to forming spectral filters.
- Stereoscopic projection, commonly called three-dimensional (3D) projecting, delivers slightly different images to each eye of a viewer, which gives the illusion of depth when the viewer's brain assembles the two images into a single scene.
- In a polarization-based 3D projection system, two projectors are used, one for each eye, and polarizing filters are used to polarize the light from each projector orthogonally to the other. The viewer wears glasses with corresponding polarizing filters, so that each eye receives only light projected from the corresponding projector.
- In anaglyphic projection, the two images are each color-shifted, one into the red end of the visible spectrum and one into the blue end. The viewer wears glasses with red and blue filters, one for each eye, so that each eye sees only the image shifted into the corresponding color. The viewer's brain reassembles the two images into a single reduced-color image with the illusion of depth. Such a system also works with still images, which can be printed with the two color-shifted images overlaid.
- A third approach projects alternating images for each eye, and glasses, for example with LCD shutters, actively block the view of the eye opposite the image currently being projected.
- In general, in one aspect, a lens bears a plurality of roll-coated layers to pass, to one eye of a viewer, a first image, in a first band of wavelengths, that is appropriate for 3D viewing of a stereoscopic image.
- Implementations may include one or more of the following features. The lens includes layers adhered to a substrate in a roll-coating process and having optical properties and thicknesses such that the combination of the layers transmits light within the first band of wavelengths and does not transmit light within a second band of wavelengths. The optical properties and thicknesses of the layers are such that the combination of the layers transmits light with a third and fourth band of wavelengths and combination of the layers transmits light with a third and fourth band of wavelengths and does not transmit light within a fifth and sixth band of wavelengths. A second lens bears a roll-coated layer to pass, to a second eye of a viewer, a second image, in a second band of wavelengths, that is complementary to the first image for 3D viewing of the stereoscopic image. The first band of wavelengths includes a band of wavelengths around 435 mn. The second band of wavelengths includes a band of wavelengths around 475 nm. The third band of wavelengths includes a band of wavelengths around 510 nm, the fourth band of wavelengths includes a band of wavelengths around 610 nm, the fifth band of wavelengths includes a band of wavelengths around 550 nm, and the sixth band of wavelengths includes a band of wavelengths around 660 nm.
- The lens includes a substrate sheet having curvature, the roll-coated layer having a generally uniform thickness normal to the sheet at points along the curvature. The curvature is such that when the lens is positioned near a person's face, points along a surface of the lens, in one plane, are a relatively uniform distance from the eye of the viewer. The curvature has a radius of curvature such that when the lens is positioned near a person's face, the radius is approximately equal to the distance between the coating and the center of the eye. The radius of curvature is between about ½ inch and 4 inches.
- In general, in one aspect, a set of glasses includes a frame to hold two lenses. A first lens includes a roll-coated filter to pass light in a first set of bands of wavelengths and reflect light in a second set of bands of wavelengths. A second lens includes a roll-coated filter to pass light in a portion of the second set of bands of wavelengths and reflect light in a portion of the first set of wavelengths.
- In general, in one aspect, glasses to view a stereoscopic image include a first lens bearing a roll-coated optical layer to pass, to one eye of a viewer, a first image that is appropriate for 3D viewing of the stereoscopic image. A second lens bears a roll-coated optical layer to pass, to a second eye of a viewer, a second image that is complementary to the first image for 3D viewing of the stereoscopic image.
- In general, in one aspect, glasses to view a 3D frame or video presentation include a supporting structure and a pair of curved lenses. Each lens bears layers having a substantially constant thickness normal to a surface of the lens. The layers are configured to filter images of the presentation projected in two non-overlapping bands of wavelengths of light as they are viewed through the lenses, to produce a 3D impression for a viewer the lenses each having a radius of curvature between about ½ inch and 4 inches.
- In general, in one aspect, a first lens includes roll-coated layers of materials selected to transmit light having a first set of wavelengths, and a second lens includes roll-coated layers of materials selected to transmit light having a second set of wavelengths.
- In general, in one aspect, a lens passes, to one eye of a viewer, a first image, in a first wavelength, that is appropriate for 3D viewing of a stereoscopic image.
- Implementations may include one or more of the following features. A second lens passes, to a second eye of the viewer, a second image, in a second wavelength, that is complementary to the first image for 3D viewing of the stereoscopic image. The lens includes a substrate sheet and a layer having stress, in which the curvature of the lens is a result of the stress. The first and second lenses are arranged so that when worn by a viewer while viewing a projection on a domed screen, light from any point on the dome passes through each lens at an angle of incidence near perpendicular to the surface of the lens.
- In general, in one aspect, alternating layers of at least a first and second material having different optical properties are roll-coated onto a substrate. Alternating layers of at least the first and second materials are roll-coated onto a second substrate. Thicknesses of the layers are selected so that in combination, the layers on the first substrate will transmit light having a first set of wavelengths and not transmit light having a second set of wavelengths, and the layers on the second substrate will transmit light having the second set of wavelengths and not transmit light having the first set of wavelengths. A portion of each of the first and second coated substrates is removed, and the portions are assembled into a frame configured to position the portions, one near each eye of a wearer when the frame is worn on the head of the wearer.
- Implementations may include one or more of the following features. The first material is Silicon Dioxide (SiO2). The second material is Niobium Pentoxide (Nb2O5), Titanium Dioxide (TiO2) or Tantalum Pentoxide (Ta2O5). A property of at least one layers is selected so that the combination of the layers has a stress, in which the stress substrate to form a first lens, a second piece is cut from the second coated substrate to form a second lens, and the first and second lenses are arranged to form a set of glasses.
- Advantages include the ability to manufacture lenses for a large number of glasses in a single process and for low per-item cost. Lenses can be curved to properly filter the complete field of view of the wearer.
- Other features and advantages will be apparent from the description and from the claims.
-
FIG. 1 is a block diagram of a projector. -
FIGS. 2A-2G and 6 are spectral graphs. -
FIG. 3 is a block diagram of a roll-coating machine. -
FIG. 4 is a table describing a coating design. -
FIG. 5A is a sectional top view of glasses on a wearer's head. -
FIGS. 5B and 5F are perspective view of glasses on a wearer's head. -
FIGS. 5C and 5D are sectional plan views of lenses and eyes. -
FIG. 5E is a sectional side view of glasses on a wearer's head. -
FIG. 6 shows calculation of crosstalk for right eye image, left-eye lens -
FIG. 7 is a perspective view of a lens and an eye. - In a typical digital projection system, for
example system 100 inFIG. 1 , a full-color image is created by generating three single-color component images that are simultaneously or sequentially projected to resolve into a single, full-color image when viewed by the audience. Asingle imaging device 102, produces the component images based on anincoming video stream 103 using light received from acolor wheel 104 that rotates red, green, and blue filters into the path of light 106 projected from a spread-spectrum (white)light source 108, producing colored light 106C. In some examples, the light sources include abulb 116, areflector 118, and ahomogenizing device 120. The homogenizingdevice 120, for example, a light pipe, makes sure that the light reaching thecolor wheel 104 is uniform in brightness and color. Theimaging device 102 could be a reflective device, such as a DLP light valve, or a transmissive device, such as an LCD panel (with appropriate changes to the layout of the projection system 100). - The filtered and imaged light 1061 is then focused by a
lens 110 onto aprojection screen 112, to be seen by aviewer 114. As long as theimaging source 102 andcolor wheel 104 switch between component images and colors at the proper rate, theviewer 114 will perceive a single, full-color image. For example, to produce a full color image at 30 frames per second (fps), the imaging device must produce at least 90 single-color frames per second. The actual rate will depend on the frame-rate of the source material, the number of color segments in thewheel 104, and the rate at which the wheel spins. For example, some projectors have more than three segments and spin thewheel - A type of 3D projection is described, for example, in U.S. Pat. No. 6,283,597. Rather than polarize the images for each eye or shift each into a completely different color, the individual red, green, and blue components of each left- and right-eye image are constrained to a narrow band of that color, different for each eye, such that filters can be used to allow only the correct image to reach each eye while still allowing each eye's image to be composed of all three colors.
FIGS. 2A and 2D show example sets of filtered color bands for two commonly used light sources. Xenon lamps are commonly used in cinema projection, while UHP (ultra high performance) mercury arc lamps are commonly used in home projectors. Images for the left eye are filtered inside the projector intobands FIGS. 2B and 2E , while images for the right eye are filtered inside the projector intobands FIGS. 2C and 2F . In each graph, the intensity values are normalized to 100 representing the potential intensity of unfiltered light. The transmission rates of the filters, independent of light source, are shown inFIG. 2G Filters in the viewer's glasses transmit the appropriate bands for each eye, while blocking the bands used for the other eye. For good image separation, the bands for the left and right eye should not overlap, - For this type of projection, a similar projection system to that shown in
FIG. 1 can be used. Instead of thecolor filter wheel 104 having three colors, it has six, corresponding to the sixbands viewer 114 wearsglasses 116 with filters that allow each eye to see the three bands used for the corresponding image. Such a system has advantages of providing a full-color stereoscopic image over a wider viewing angle than systems using polarized light. - Such projectors are discussed in co-pending application Two-Dimensional and Three-Dimensional Projecting of Barret Lippey, filed on the same day as this application, and incorporated here by reference.
- As mentioned above, to view a three-color 3D projection, the viewer wears glasses with lenses including filters that allow each eye to see the three color-bands used for the corresponding image and not those used for the complementary image meant for the other eye. One way to produce such a lens uses a batch-coating process to produce each lens as a distinct unit.
- Roll-coating can produce complex optical filters inexpensively on thin, flexible substrates. A roll-coating process involves coating a series of thin layers of different materials on a substrate. Whereas a batch process typically coats on individual, small pieces of glass or plastic that are not flexible, the roll coating process can deposit coatings onto a roll of flexible plastic web that is continuously passing through the coating chamber. One substrate material that may be used is PET (polyethylene terephthalate), because of its strength, low outgassing, high heat resistance, and low cost. The PET substrate can be approximately 0.005″ to 0.015″ thick. The width of the substrate is typically about 1 foot to 6 feet. Other possible substrate materials include polycarbonate, polymethyl methacrylate and transparent polyimide. Thin rolls of these polymeric materials are flexible enough to be bent around a radius of approximately 1″ without stress failure.
- As shown in
FIG. 3 , alarge roll 300 of the plastic film to be used as a substrate is mounted on one end of the machine. Thesubstrate 302 is fed through avacuum lock 304 - As shown in
FIG. 3 , alarge roll 300 of the plastic film to be used as a substrate is mounted on one end of the machine. Thesubstrate 302 is fed through avacuum lock 304 into thecoating chamber 306 which is kept at low pressure. As atransport mechanism 308 moves thesubstrate 302 through thecoating chamber 306, thin layers of optical materials are sputtered or evaporated onto thesubstrate 302 as it passes in front ofsuccessive deposition zones 310 with sputter or evaporation targets 312. Thesubstrate 302 is stretched over alarge drum 314 during deposition so that it stays flat and the heat of deposition can be removed through the drum. The substrate then passes through anothervacuum lock 304 and is wound onto anotherroll 316. Anew roll 300 can be spliced onto the end of a previous roll that runs out. The machine may be designed to be run without stopping until maintenance is needed. Typical maintenance includes replacing sputter orevaporation targets 312, cleaning shields 318, and replacing worn-out equipment. For complex coatings, thesubstrate 302 may need to be run through the machine multiple times. Back and forth motion of the substrate through the deposition zones can be used if the plastic-film transport mechanism 308 allows it. - The rolls can weigh up to several hundred pounds each and can be many thousands of feet long. Because roll coating can be performed continuously without breaking vacuum or needing lengthy pump-down each time substrates are loaded, the throughput of roll coating can be much higher than batch processing and the resultant cost of roll coating can be much lower. After the roll-coating process, individual pieces are cut out of the substrate and assembled into glasses. The individual pieces can be used as lenses themselves, held in place by the frame of the glasses, or they can be laminated onto more substantial glass or plastic lenses.
- Each of the layers of optical material has certain optical properties (e.g., alternating layers of high refractive index and low refractive index), and the combination of the layers is designed to produce the filtering characteristics desired for a particular application. In the case of triple bandpass filters for 3D glasses, the goal is to have a high transmission of the bands for each eye and high rejection of other light, including the bands used for the opposite eye, as shown in
FIGS. 2B and 2C .FIG. 2B shows the transmission rate in the threebands FIG. 2C shows the transmission rates in the threebands - An example of a triple bandpass filter design is shown in
FIG. 4 . Table 400 lists the materials incolumn 402 and their thicknesses incolumns column 404, for the left eye, is the basis ofFIG. 2B . By increasing the coating thickness of every layer by about 8%, the spectral curve of the coating can be shifted to longer wavelengths to make the corresponding filter for the right eye, as shown incolumn 406 andFIG. 2C . The amount of the shift in wavelength is equal to the amount of increase in coating thickness, so the amount should be selected to shift eachpass band bands bands 202L, etc., should be approximately 80% or greater, and the average transmission in the blocking bands, that is, for wavelengths outside the pass-bands, should be approximately 0.5% or less. The slopes of the band edges, e.g.,edge 207 inFIG. 2G , between thepoints - Filters made by this process can be used in both the glasses worn by a viewer and as the filters within the projector itself, with appropriate adjustments made for the geometry of the projector, for example, if light is incident on the filters at some angle other than zero degrees within the projector.
- In some examples, because the substrate used in the roll-coating process is a thin flexible sheet of plastic, the filters used for the glasses can easily be curved into a cylindrical shape, as shown in
FIG. 5A . Once shaped, the filters can be held in the desired shape by theframe 510 of theglasses 500. Alternatively, they could be laminated onto a glass or plastic lens having the desired shape. This flexibility provides an advantage over batch-coated processes, as it allows a uniform coating over a curved surface, since the surface is kept flat during the coating process. Roll coating using sputtering or evaporation is a directional coating process in which the material being deposited moves in a straight line from the source to the substrate. This results in a uniform coating on a flat surface with appropriate masking and process control. Thickness uniformity should be within about +/−2% to achieve the tolerances on bands discussed above. Other coating methods, for example chemical vapor deposition, that can coat highly curved surfaces because they are non-directional tend to be expensive compared to sputtering or evaporation. Since roll-coating works with a flexible substrate, it allows inexpensive directional coating processes to be used to create curved lenses. -
Curved lenses 502 are positioned inglasses 116 so that they maintain a uniform distance D along their lengths from the center of theeyes 504. As shown inFIGS. 5C and 5D , this helps prevent shifting of the transmitted wavelengths due to a changing angle of incidence (AOI) 505 (as measured between the incident light and a normal 507 from the lens 506) as the eyeball rotates to look through the left or right edges of the glasses. Incident light 508 a, 508 b, and 508 c passes through thelens 502 to the eye at a relatively low AOI no matter which direction it is coming from. In relatively flat glasses, e.g., withlens 506, theAOI 505 of light 508 a and 508 c entering thelens 506 from the sides is high (whether the viewer rotates his eyes to the side or simply sees it through his peripheral vision), while the AOI of light 508 b entering thelens 506 from straight ahead is low. This will alter the frequencies admitted by the filter, as shown inFIG. 6 , resulting in a ghosting and degradation of the 3D effect at the edges of the viewer's field of view. In some examples, the curvature of thelenses 502 may not be completely cylindrical, but might have a variable radius of curvature. The distance between the lens and the center of the eye should be relatively uniform, as compared to traditional flat or slightly curved lenses. In general, each lens should have a curvature centered on the center of the eye and with a radius of curvature approximately equal to the distance from the lens to the center of the eye, for example, ½ inch for lenses very close to the eye, or as much as four inches for lenses situated farther from the eye. Slightly curved traditional lenses typically have radii of curvature of around twelve inches. -
Graph 600 shows cross-talk resulting from light passing through a flat lens at two different angles.Line 602 shows that at 0°, little of the light projected for the right-eye is admitted by a left-eye filter in the glasses.Line 604, however, shows that at 30° AOI,large peaks eye bands FIG. 2B , one sees that, at this angle, the left eye will be receiving light meant for the right eye. With a curved lens, all the light reaching the eye has come through the lens at a low AOI no matter what direction it came from, preventing this cross-talk. - Even the thin flexible sheets used in a roll coating process are not easily curved in two directions at once, so such lenses will generally be curved in the horizontal plane, as shown in FIGS. 5A-C and 7, such that the up/down direction will still have some wavelength shift. This choice is made because the vertical range of eyeball motion (
arrows 702, 704) is generally much less than the horizontal angle (arrows 706, 708). The lenses could be curved in the vertical direction, as shown inFIGS. 5E and 5D , if the nature of the projection, for example, made vertical eye movement a greater concern. - In some examples, a sputtered coating has compressive stress that contributes to a built-in curvature in the completed filter that is relatively low-stress compared to bending a substrate that starts flat. Depending on the thickness of the substrate and its material, the built-in curvature can be adjusted to the proper curvature to maintain low AOI for all horizontal angles of eyeball motion. Alternatively, the built-in curvature may get the substrate part-way to the desired shape, so that the additional curvature that must be added does not stress the coating as much as it would if the substrate were naturally flat. If the distance between the filter and the center of the eyeball is 1″, the radius of curvature of the film should also be 1″. This natural radius can be achieved with a sputtered coating that is deposited with typical stress values and a polycarbonate substrate that is approximately 0.008″ thick. A filter with a PET substrate of the same thickness and the same sputtered coating has a natural radius of approximately 3″ because it is a stiffer substrate material, but this material can bent into the 1″ radius without degradation to the coating. Experimental reduction of the spectral shift was confirmed for a large range of horizontal eyeball angles by building glasses based on the PET substrate bent into a 1″ radius. Other curvatures may be used, for example, giving up some image quality to allow a more comfortable fit, or to fit over prescription eye wear.
- The curved lenses enabled by roll-coating the filters may be particularly advantageous in domed-screen or cylindrical-screen theaters. For example, domed screens tend to require more eyeball motion than flat screens, and roll-coated coatings allow easy curvature of the glasses to reduce ghosting due to crosstalk between eyes. Domed screens allow objects to approach the viewer from the left and right in addition to the front, and a curved lens maintains the illusion of depth even for images in the viewer's peripheral vision.
- Other implementations are within the scope of the claims. For example, the filters could be configured to be attached to a wearer's existing eyeglasses.
Claims (29)
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20070236617A1 (en) * | 2006-04-05 | 2007-10-11 | Barret Lippey | Two-dimensional and three-dimensional projecting |
US20080278807A1 (en) * | 2007-05-09 | 2008-11-13 | Martin John Richards | Method and system for shaped glasses and viewing 3d images |
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US20110102563A1 (en) * | 2009-11-03 | 2011-05-05 | Johnson Jr Robert L | Multi-spectral stereographic display system |
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US20160111573A1 (en) * | 2014-10-21 | 2016-04-21 | Tenksolar, Inc. | Highly densified pv module |
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US10768449B2 (en) | 2012-01-17 | 2020-09-08 | Imax Theatres International Limited | Stereoscopic glasses using tilted filters |
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US11579470B2 (en) | 2012-05-10 | 2023-02-14 | Oakley, Inc. | Lens with anti-fog element |
US12124116B2 (en) | 2017-10-20 | 2024-10-22 | Luxottica S.R.L. | Eyewear with variable transmission lens |
Families Citing this family (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
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CN105093801A (en) * | 2014-05-22 | 2015-11-25 | 上海华博信息服务有限公司 | Monoblock stereographic projection device based on color dividing |
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CN108388026A (en) * | 2018-01-26 | 2018-08-10 | 苏州市唯嘉光学有限公司 | A kind of 3D glasses and preparation method thereof |
Citations (30)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4290675A (en) * | 1978-12-04 | 1981-09-22 | Leo Beiser | Anaglyph stereoscopy |
US5028121A (en) * | 1987-06-19 | 1991-07-02 | Fraunhofer-Gesellschaft Zur Forderung Der Angewandten Forschung E.V. | Projection device |
US5042921A (en) * | 1988-10-25 | 1991-08-27 | Casio Computer Co., Ltd. | Liquid crystal display apparatus |
US5074645A (en) * | 1990-09-28 | 1991-12-24 | Honeywell Inc. | Full color three dimensional display system |
US5218386A (en) * | 1991-06-19 | 1993-06-08 | Levien Raphael L | Eyeglasses with spectral color shift |
US5347644A (en) * | 1992-06-11 | 1994-09-13 | Sedlmayr Steven R | Three-dimensional image display device and systems and methods for implementation thereof |
US5552840A (en) * | 1992-03-13 | 1996-09-03 | Sharp Kabushiki Kaisha | Three dimensional projection display reflecting divided polarized light on to reflective liquid crystal display elements |
US5575548A (en) * | 1994-07-30 | 1996-11-19 | Daewoo Electronics Industrial Co., Ltd. | Full color three dimensional projector |
US5774201A (en) * | 1995-12-05 | 1998-06-30 | Oakley, Inc. | Elliptical lens for eyewear |
US5982538A (en) * | 1994-01-28 | 1999-11-09 | Mitsubishi Denki Kabushiki Kaisha | Stereoscopic image projection apparatus and telecentric zoom lens |
US6142624A (en) * | 1998-07-17 | 2000-11-07 | Sola International Holdings Ltd. | Wide field spherical lenses and single design spectacle frames therefor |
US6164777A (en) * | 1998-12-16 | 2000-12-26 | Bausch & Lomb Incorporated | Color-imparting contact lenses with interference coating and method for making the same |
US6276801B1 (en) * | 1994-08-04 | 2001-08-21 | Digital Projection Limited | Display system |
US6280034B1 (en) * | 1999-07-30 | 2001-08-28 | Philips Electronics North America Corporation | Efficient two-panel projection system employing complementary illumination |
US6283597B1 (en) * | 1997-04-30 | 2001-09-04 | Daimlerchrysler Ag | Method and facility for light-beam projection of images on a screen |
US20010028416A1 (en) * | 2000-02-03 | 2001-10-11 | Divelbiss Adam W. | System and method for displaying 3D imagery using a dual projector 3D stereoscopic projection system |
US6309071B1 (en) * | 1999-08-04 | 2001-10-30 | Sharp Laboratories Of America, Inc. | Liquid crystal projection display system |
US20020154404A1 (en) * | 1992-06-11 | 2002-10-24 | Sedlmayr Steven R. | High efficiency electromagnetic beam projector, and systems and methods for implementation thereof |
US20030020809A1 (en) * | 2000-03-15 | 2003-01-30 | Gibbon Michael A | Methods and apparatuses for superimposition of images |
US6624935B2 (en) * | 2000-12-06 | 2003-09-23 | Karl Store Imaging, Inc. | Single-axis stereoscopic video imaging system with centering capability |
US6650377B2 (en) * | 2000-05-08 | 2003-11-18 | Colorlink, Inc. | Two panel projection systems |
US6672722B2 (en) * | 2001-06-19 | 2004-01-06 | Intel Corporation | Projection engine |
US6698890B1 (en) * | 1999-05-26 | 2004-03-02 | Daimlerchrysler Ag | Device for projecting a color image |
US6777070B1 (en) * | 1998-10-14 | 2004-08-17 | Tomoegawa Paper Co., Ltd. | Antireflection material and polarizing film using the same |
US6793341B2 (en) * | 2001-12-27 | 2004-09-21 | Infocus Corporation | Stereographic projection system |
US6867775B2 (en) * | 2000-02-08 | 2005-03-15 | Daimlerchrysler Ag | Method and device for displaying a multidimensional image of an object |
US6945654B2 (en) * | 2001-08-06 | 2005-09-20 | Jds Uniphase Corporation | Color management system having a prism to compensate for optical aberrations and to enhance contrast |
US6972810B2 (en) * | 2000-11-02 | 2005-12-06 | 3M Innovative Properties Company | Optical systems for reflective LCDs |
US20060011617A1 (en) * | 2004-07-13 | 2006-01-19 | Ricardo Covarrubias | Automated laser cutting of optical lenses |
US20060119795A1 (en) * | 2004-12-02 | 2006-06-08 | Barret Lippey | Microdisplay projection |
Family Cites Families (49)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US1993272A (en) | 1931-12-09 | 1935-03-05 | New Screen Corp | Stereoscopic viewing lens |
US4134644A (en) | 1977-01-10 | 1979-01-16 | Marks Alvin M | 3D Color pictures with multichrome filters |
GB1604295A (en) | 1977-06-27 | 1981-12-09 | Adams P A | Visual effect system |
US4247177A (en) | 1979-01-15 | 1981-01-27 | Marks Alvin M | 3D Multichrome filters for spectacle frames |
US4740836A (en) | 1983-12-05 | 1988-04-26 | Craig Dwin R | Compatible 3D video display using commercial television broadcast standards and equipment |
JPS6153226A (en) | 1984-08-24 | 1986-03-17 | Chemo Sero Therapeut Res Inst | Purification of simple herpes subunit vaccine |
JPS62254594A (en) | 1986-04-28 | 1987-11-06 | Nippon Telegr & Teleph Corp <Ntt> | Stereoscopic picture display method and its device |
JPH0565440A (en) | 1991-03-01 | 1993-03-19 | Mitsubishi Rayon Co Ltd | Correction liquid |
JPH0732628U (en) * | 1993-11-11 | 1995-06-16 | 株式会社アックス | Lens removable glasses |
DE69417224T2 (en) | 1994-07-22 | 1999-09-30 | Berg Electronics Manufacturing B.V., S'-Hertogenbosch | Selectively metallized connector with at least one coaxial or biaxial contact |
US5619219A (en) | 1994-11-21 | 1997-04-08 | International Business Machines Corporation | Secure viewing of display units using a wavelength filter |
US5614920A (en) | 1994-11-21 | 1997-03-25 | International Business Machines Corporation | Secure viewing of display units using an electronic shutter |
US5537476A (en) * | 1994-11-21 | 1996-07-16 | International Business Machines Corporation | Secure viewing of display units by image superposition and wavelength separation |
JPH10160902A (en) * | 1996-11-27 | 1998-06-19 | Sony Corp | Antireflection film, its forming method and forming device |
JPH1116521A (en) | 1997-04-28 | 1999-01-22 | Canon Inc | Electron device and image forming device using it |
IL122534A0 (en) | 1997-12-09 | 1998-06-15 | Unic View Ltd | Projector |
CA2347731A1 (en) * | 1998-10-20 | 2000-04-27 | Svend Erik Borre Sorensen | A method for recording and viewing stereoscopic images in colour using multichrome filters |
EP1164005B1 (en) * | 1999-02-01 | 2008-07-23 | Teijin Chemicals, Ltd. | Surface-protected transparent plastic composite |
AU6427500A (en) | 1999-08-10 | 2001-03-05 | Per Skafte Hansen | Methods and apparatuses for encoding and displaying stereograms |
JP4101434B2 (en) | 2000-05-18 | 2008-06-18 | 日本放送協会 | Transmission control device |
JP2004511824A (en) | 2000-10-12 | 2004-04-15 | レベオ, インコーポレイティッド | Digital light processing 3D projection system and method |
AU1351202A (en) * | 2000-10-30 | 2002-05-15 | Sola Internat Inc | Wide field spherical lenses and protective eyewear |
DE10057102B4 (en) | 2000-11-16 | 2010-09-30 | Infitec Gmbh | Method and arrangement for displaying a multi-dimensional image |
US7293871B2 (en) * | 2000-11-27 | 2007-11-13 | Ophthonix, Inc. | Apparatus and method of correcting higher-order aberrations of the human eye |
KR20020050042A (en) | 2000-12-20 | 2002-06-26 | 박남은 | Flickerless Stereoscopic Image Display System with Liquid Crystal Shutter Glasses |
JP2004525569A (en) | 2001-01-12 | 2004-08-19 | ヴレックス、インク. | Stereoscopic display method and apparatus using column alternating data by digital light processing |
CN2496048Y (en) * | 2001-05-16 | 2002-06-19 | 艾派克科技股份有限公司 | Multi-functional stereo glasses |
JP4623349B2 (en) * | 2001-05-23 | 2011-02-02 | ソニー株式会社 | Thin film type ND filter and manufacturing method thereof |
JP4721561B2 (en) * | 2001-06-01 | 2011-07-13 | 三菱電機株式会社 | Projection television with protective plate |
JP3908484B2 (en) * | 2001-06-29 | 2007-04-25 | 本田技研工業株式会社 | Manual transmission gearbox |
US20050231800A1 (en) | 2001-12-21 | 2005-10-20 | Barret Lippey | Selective reflecting |
US7515336B2 (en) * | 2001-12-21 | 2009-04-07 | Bose Corporation | Selective reflecting |
JP4503910B2 (en) * | 2002-03-08 | 2010-07-14 | オリンパス株式会社 | Image display method, image display apparatus, and image printing apparatus |
CN2550793Y (en) * | 2002-03-09 | 2003-05-14 | 王宗根 | Stereo glasses for colour TV |
JP2003316278A (en) * | 2002-04-25 | 2003-11-07 | Canon Inc | Display device having optical film |
JP4041966B2 (en) * | 2002-06-18 | 2008-02-06 | 信越化学工業株式会社 | Article with hard coat agent and hard coat film formed |
US6958191B2 (en) * | 2002-08-29 | 2005-10-25 | Shin-Etsu Chemical Co., Ltd. | Lens with stain resistant surface layer |
DE10249815B4 (en) | 2002-10-24 | 2014-01-02 | Infitec Gmbh | Stereo projection system and projection device for it |
JP2004266681A (en) * | 2003-03-03 | 2004-09-24 | Internatl Business Mach Corp <Ibm> | Antenna unit and radio communication device |
JP2004333561A (en) * | 2003-04-30 | 2004-11-25 | Nippon Hoso Kyokai <Nhk> | Stereoscopic image display device |
US6972136B2 (en) * | 2003-05-23 | 2005-12-06 | Optima, Inc. | Ultra low residual reflection, low stress lens coating and vacuum deposition method for making the same |
DE10359788B4 (en) | 2003-10-01 | 2008-06-12 | Daimler Ag | Stereo projection with complementary interference filters |
US7832869B2 (en) | 2003-10-21 | 2010-11-16 | Barco N.V. | Method and device for performing stereoscopic image display based on color selective filters |
US8384773B2 (en) | 2004-04-01 | 2013-02-26 | Hewlett-Packard Development Company, L.P. | Method and system for displaying an image in three dimensions |
KR20050102282A (en) | 2004-04-21 | 2005-10-26 | 썬스타 특수정밀 주식회사 | Stereoscopic headset service three dimensional stereoscopic image information of embroidering machine or sewing machine |
DE602005019557D1 (en) | 2004-05-05 | 2010-04-08 | Imax Corp | HIGH-PERFORMANCE STEREOGRAPHIC PROJECTION SYSTEM WITH MULTIPLE SOURCES |
KR100708838B1 (en) | 2004-06-30 | 2007-04-17 | 삼성에스디아이 주식회사 | Stereoscopic display device and driving method thereof |
US8902284B2 (en) | 2004-08-10 | 2014-12-02 | Koninklijke Philips N.V. | Detection of view mode |
DE202005001077U1 (en) | 2004-12-23 | 2005-03-31 | Daimler Chrysler Ag | Stereo projection system, corrects stereo image data according to narrow passbands of interference filter units before supplying to stereo projector |
-
2006
- 2006-04-05 US US11/398,376 patent/US20070236809A1/en not_active Abandoned
-
2007
- 2007-04-04 CN CN200780017015.7A patent/CN101444106B/en active Active
- 2007-04-04 JP JP2009504443A patent/JP2009532747A/en active Pending
- 2007-04-04 WO PCT/US2007/065937 patent/WO2007118114A2/en active Application Filing
- 2007-04-04 EP EP07760079A patent/EP2008473B1/en active Active
-
2009
- 2009-10-27 US US12/606,629 patent/US10397558B2/en active Active
-
2011
- 2011-08-26 US US13/218,896 patent/US9313482B2/en active Active
Patent Citations (31)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4290675A (en) * | 1978-12-04 | 1981-09-22 | Leo Beiser | Anaglyph stereoscopy |
US5028121A (en) * | 1987-06-19 | 1991-07-02 | Fraunhofer-Gesellschaft Zur Forderung Der Angewandten Forschung E.V. | Projection device |
US5042921A (en) * | 1988-10-25 | 1991-08-27 | Casio Computer Co., Ltd. | Liquid crystal display apparatus |
US5074645A (en) * | 1990-09-28 | 1991-12-24 | Honeywell Inc. | Full color three dimensional display system |
US5218386A (en) * | 1991-06-19 | 1993-06-08 | Levien Raphael L | Eyeglasses with spectral color shift |
US5552840A (en) * | 1992-03-13 | 1996-09-03 | Sharp Kabushiki Kaisha | Three dimensional projection display reflecting divided polarized light on to reflective liquid crystal display elements |
US5347644A (en) * | 1992-06-11 | 1994-09-13 | Sedlmayr Steven R | Three-dimensional image display device and systems and methods for implementation thereof |
US20020154404A1 (en) * | 1992-06-11 | 2002-10-24 | Sedlmayr Steven R. | High efficiency electromagnetic beam projector, and systems and methods for implementation thereof |
US5982538A (en) * | 1994-01-28 | 1999-11-09 | Mitsubishi Denki Kabushiki Kaisha | Stereoscopic image projection apparatus and telecentric zoom lens |
US5575548A (en) * | 1994-07-30 | 1996-11-19 | Daewoo Electronics Industrial Co., Ltd. | Full color three dimensional projector |
US6276801B1 (en) * | 1994-08-04 | 2001-08-21 | Digital Projection Limited | Display system |
US5774201A (en) * | 1995-12-05 | 1998-06-30 | Oakley, Inc. | Elliptical lens for eyewear |
US6283597B1 (en) * | 1997-04-30 | 2001-09-04 | Daimlerchrysler Ag | Method and facility for light-beam projection of images on a screen |
US6142624A (en) * | 1998-07-17 | 2000-11-07 | Sola International Holdings Ltd. | Wide field spherical lenses and single design spectacle frames therefor |
US6777070B1 (en) * | 1998-10-14 | 2004-08-17 | Tomoegawa Paper Co., Ltd. | Antireflection material and polarizing film using the same |
US6164777A (en) * | 1998-12-16 | 2000-12-26 | Bausch & Lomb Incorporated | Color-imparting contact lenses with interference coating and method for making the same |
US6698890B1 (en) * | 1999-05-26 | 2004-03-02 | Daimlerchrysler Ag | Device for projecting a color image |
US6280034B1 (en) * | 1999-07-30 | 2001-08-28 | Philips Electronics North America Corporation | Efficient two-panel projection system employing complementary illumination |
US6309071B1 (en) * | 1999-08-04 | 2001-10-30 | Sharp Laboratories Of America, Inc. | Liquid crystal projection display system |
US20010028416A1 (en) * | 2000-02-03 | 2001-10-11 | Divelbiss Adam W. | System and method for displaying 3D imagery using a dual projector 3D stereoscopic projection system |
US6867775B2 (en) * | 2000-02-08 | 2005-03-15 | Daimlerchrysler Ag | Method and device for displaying a multidimensional image of an object |
US20030020809A1 (en) * | 2000-03-15 | 2003-01-30 | Gibbon Michael A | Methods and apparatuses for superimposition of images |
US6650377B2 (en) * | 2000-05-08 | 2003-11-18 | Colorlink, Inc. | Two panel projection systems |
US6972810B2 (en) * | 2000-11-02 | 2005-12-06 | 3M Innovative Properties Company | Optical systems for reflective LCDs |
US6624935B2 (en) * | 2000-12-06 | 2003-09-23 | Karl Store Imaging, Inc. | Single-axis stereoscopic video imaging system with centering capability |
US6672722B2 (en) * | 2001-06-19 | 2004-01-06 | Intel Corporation | Projection engine |
US6945654B2 (en) * | 2001-08-06 | 2005-09-20 | Jds Uniphase Corporation | Color management system having a prism to compensate for optical aberrations and to enhance contrast |
US6793341B2 (en) * | 2001-12-27 | 2004-09-21 | Infocus Corporation | Stereographic projection system |
US20060011617A1 (en) * | 2004-07-13 | 2006-01-19 | Ricardo Covarrubias | Automated laser cutting of optical lenses |
US20060119795A1 (en) * | 2004-12-02 | 2006-06-08 | Barret Lippey | Microdisplay projection |
US7241014B2 (en) * | 2004-12-02 | 2007-07-10 | Bose Corporation | Microdisplay projection |
Cited By (81)
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US7995092B2 (en) | 2006-04-05 | 2011-08-09 | Barret Lippey | Two-dimensional and three-dimensional projecting |
US20100066976A1 (en) * | 2007-05-09 | 2010-03-18 | Dolby Laboratories Licensing Corporation | Method and system for shaped glasses and viewing 3d images |
US20100073769A1 (en) * | 2007-05-09 | 2010-03-25 | Dolby Laboratories Licensing Corporation | Method and system for shaped glasses and viewing 3d images |
US8537463B2 (en) * | 2007-05-09 | 2013-09-17 | Dolby Laboratories Licensing Corporation | Method and system for shaped glasses and viewing 3D images |
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Also Published As
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US10397558B2 (en) | 2019-08-27 |
JP2009532747A (en) | 2009-09-10 |
US20110310479A1 (en) | 2011-12-22 |
WO2007118114A3 (en) | 2008-04-17 |
EP2008473B1 (en) | 2013-01-16 |
CN101444106A (en) | 2009-05-27 |
CN101444106B (en) | 2015-06-17 |
WO2007118114A2 (en) | 2007-10-18 |
US9313482B2 (en) | 2016-04-12 |
US20100039352A1 (en) | 2010-02-18 |
EP2008473A2 (en) | 2008-12-31 |
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