WO2010127165A2 - Systems for capturing images through a display - Google Patents
Systems for capturing images through a display Download PDFInfo
- Publication number
- WO2010127165A2 WO2010127165A2 PCT/US2010/033041 US2010033041W WO2010127165A2 WO 2010127165 A2 WO2010127165 A2 WO 2010127165A2 US 2010033041 W US2010033041 W US 2010033041W WO 2010127165 A2 WO2010127165 A2 WO 2010127165A2
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- WIPO (PCT)
- Prior art keywords
- filter
- display screen
- camera
- projector
- light
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N5/00—Details of television systems
- H04N5/222—Studio circuitry; Studio devices; Studio equipment
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N5/00—Details of television systems
- H04N5/222—Studio circuitry; Studio devices; Studio equipment
- H04N5/2224—Studio circuitry; Studio devices; Studio equipment related to virtual studio applications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N7/00—Television systems
- H04N7/14—Systems for two-way working
- H04N7/141—Systems for two-way working between two video terminals, e.g. videophone
- H04N7/142—Constructional details of the terminal equipment, e.g. arrangements of the camera and the display
- H04N7/144—Constructional details of the terminal equipment, e.g. arrangements of the camera and the display camera and display on the same optical axis, e.g. optically multiplexing the camera and display for eye to eye contact
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3191—Testing thereof
- H04N9/3194—Testing thereof including sensor feedback
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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
- H04N13/20—Image signal generators
- H04N13/204—Image signal generators using stereoscopic image cameras
- H04N13/239—Image signal generators using stereoscopic image cameras using two two-dimensional [2D] image sensors having a relative position equal to or related to the interocular distance
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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
-
- 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]
- H04N13/337—Displays for viewing with the aid of special glasses or head-mounted displays [HMD] using polarisation multiplexing
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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
- H04N13/363—Image reproducers using image projection screens
Definitions
- Embodiments of the current invention relate to remote collaboration systems.
- Figures 1-3 show schematic representations of systems configured to project images without interfering with images captured by a camera.
- Figure 1 shows a communication medium with a half-silvered mirror 102, a camera 104 located above the mirror 102, and a projector 106.
- the mirror 102 and the projector 106 are positioned so that an image of a person or object located at a remote site is projected by the projector 106 onto the rear surface of the half-silvered mirror 102 and is visible to a viewer 108.
- the camera 104 captures an image of the viewer 108 via that viewer's reflection in the mirror 102 and transmits the image to another person.
- the configuration of mirror 102 Docket No. 200902583- 1
- FIG. 2 shows a communication medium with a switchable diffusing screen 202, a camera 204, and a projector 206,
- the screen 202 can be composed of a materia] that can be cycled rapidly between diffusive and transparent states.
- the state of the screen 202, projector 206, and camera 204 can be synchronized so that the projector 206 projects images when the screen is diffusive and the camera 204 captures images when the screen in transparent.
- Figure 3 shows a top view of a communication medium with two cameras 302 and 304 on each side of a display 306. Images of a viewer 308, for example, are captured by the cameras 302 and 304 and processed to create a single image of the viewer 308 which appears to be captured by a single virtual camera 310 for viewing by another person at a different location.
- an image captured in this manner typically suffers from processing artifacts, especially when the captured views are at a very different angle from the intended virtual view, as would be the case with a user close to a large screen.
- This system also fails to capture hand gestures near, or drawing on, the screen surface. It is desirable to have visual-collaborative systems that project images without interfering with and diminishing the quality of the images simultaneously captured by a camera.
- Figures 1-3 show schematic representations of systems configured to project images without interfering with images captured by a camera.
- Figure 4 shows a schematic representation of a first visual-collaborative system configured in accordance with embodiments of the present invention.
- Figure 5 shows a plot of exemplar) ' wavelength ranges over which two filters transmit light in accordance with embodiments of the present invention. Docket No. 200902583- 1
- Figure 6 shows a schematic representation of a second visual-collaborative system configured in accordance with embodiments of the present invention.
- Figure 7A shows a schematic representation of a third visual-collaborative system configured in accordance with embodimenls of the present invention.
- Figure 733 shows two color wheels coni ⁇ gurcd in accordance with embodiments of the present invention,
- Figure 7C shows plots of exemplary wavelength ranges over which two filters transmit light in accordance with embodiments of the present invention
- Figure 8 shows a schematic representation of a sixth visual-collaborative system configured in accordance with embodiments of the present invention.
- Figure 9 shows a camera positioned at approximately eye level to a viewer in accordance with embodiments of the present invention
- Figure 10 shows a schematic representation of a seventh visual-collaborative system configured in accordance with embodiments of the present invention.
- Figure 1 1 shows a schematic representation of an eight visual-collaborative system configured in accordance with embodiments of the present invention.
- Figure 12 shows a schematic representation of a ninth visual-collaborative system configured in accordance with embodiments of the present invention.
- Figures 13A- 1333 show a schematic representation of a tenth visual-collaborative system configured in accordance with embodiments of the present invention
- Figures 14A-14B show isometric views of interactive video conferencing using visual-collaborative systems in accordance with embodiments of the present invention
- Figure 15 shows a flow diagram for a method for video collaborative interaction in accordance with embodiments of the present invention
- Embodiments of the present invention are directed to visual-collaborative systems enabling geographically distributed groups to engage in face-to-fac ⁇ , interactive collaborative video conferences,
- the systems include a projection display screen that Docket No. 200902583- 1
- the display screen can be used to simultaneously display images from the remote site
- FIG 4 shows a schematic representation of a visual-collaborative system 400 configured in accordance with embodiments of the present invention.
- the system 400 comprises a display screen 402, a camera 404, and a projector 406 and includes a filter A disposed between the camera lens 408 and the screen 402 and a filter B disposed between ⁇ he projector lens 412 and the screen 402.
- the camera lens 408 and projector lens 412 are positioned to face the same first surface 410 of the display screen 402.
- the screen 402 is a rear projection display screen.
- the rear projection implementation shown is for purposes of example only and the screen 402 may also be a front projection display screen.
- a front projection implementation is shown in Figures 10-13.
- the screen 402 is a rear projection display screen comprising a screen material that diffuses light striking the first surface 410 within a first range of angles.
- the projector 406 is positioned to project images onto the first surface 410 within the first range of angles.
- a viewer 414 facing the outer second surface 416 of the screen 402 sees the images projected onto the screen 402 from the projector 406.
- the screen 402 is also configured to transmit light scattered from objects facing the second surface 416.
- the camera lens 408 is positioned to face the first surface 410 so that light scattered off of objects facing the second surface 416 pass through the display screen and is captured as images of the objects by the camera 404.
- the display screen 402 comprises a relatively low concentration of diffusing particles embedded within a transparent screen medium.
- the low concentration of diffusing particles allows a camera 404 to capture an image through the screen (providing the subject is well lit), while diffusing enough of the light from the projector 406 to form an image on the screen.
- the display screen 402 can be a holographic film that has been configured to accept light from the projector 406 within a first range of angles and transmit light that is visible to the viewer 414 within a different range of viewing angles.
- the holographic film is otherwise Docket No. 200902583- 1
- the system 400 may also include a housing 418 enclosing the camera 404 and projector 406.
- the housing 418 is configured with an opening enclosing the boundaries of the screen 402 and is configured so that light can only enter and exit the housing 418 through the screen 402.
- filters A and B are positioned so that light output from the projector 406 passes through filter B before striking the first surface 410 and light captured by the camera 404 passes through filter A.
- the filters A and B are configured to prevent light produced by the projector 406 and scattered or diffused from the screen 402 from interfering with light transmitted through the screen 402 and captured by the camera 404. In one embodiment, this is achieved using complementary filters to block different components of light, In one embodiment, filter A passes through light that would be blocked by filter B. Similarly, filter B passes light that would be blocked by filter A. In this way, light from the projector 406 that is diffused or scattered off the first surface may be blocked.
- filter A passing light blocked by filter B and filter B passing light blocked by filter A is implemented in Figure 4 where the camera system includes a first filter (filter A) that is disposed between the camera and the first surface of the display screen. Filter A passes the light received by the camera, except for the light produced by the projector (which it blocks). A second filter (filter B) disposed between the light source of the projector and the projection surface of the display screen, wherein the second filter passes light output by the projector that is blocked by the first filter.
- polarized filters may be used. In one embodiment, the Docket No. 200902583- 1
- complementary fillers A and B are polarizing filters, where polarizing filler A has a l ⁇ rsl direction of orientation that is different than the direction of orientation of polarizing filter B.
- the filters are circularly polarized, where the polarization for one filter is right circularly polarized and the polarization for the other filter is left circularly polarized.
- the two filters are polarized linearly. In this embodiment, one filter is polarized horizontally while the other filter is polarized vertically.
- the term blocked is used throughout the application, it is realized that in some cases a filter might not block 100% of the light of the complementary filter so that the filters arc completely non-overlapping. However, when the filters are non- overlapping, the best performance is typically achieved. For example, in the embodiment where the filters arc linearly polarized with one filter (assume for potposes of example filter A) is polarized horizontally and the other filter (filter B) is polarized vertically, preferably, the direction of orientation of the filters is orthogonal to each other. In this implementation, the filters are non-overlapping and filter A blocks light that would not be blocked by filter B and filter B blocks light that would not be blocked by filter A. Although orientations other than a 90 degree orthogonal positioning may be used, this is not desirable since as the orientation of the two filters moves further away from it's orthogonal positioning, relative to each other, the further the system performance is decreased.
- filter A is positioned at an 88 degree angle relative to filter B (as opposed to the preferred 90 degree positioning.)
- the filters are not completely non-overlapping, typically the filter arrangement would still provide a configuration that would substantially block light from the complementary filter such that performance is not noticeably degraded to the viewer (as compared to the 90 degree orthogonal positioning).
- the degree to which the images arc visually degraded is to some extent a function of the media content and the environment (brightness, etc) of the viewers. For example, if the media content includes a black and white checkerboard image (high brightness for white image and high contrast), an 88 degree relative positioning may not be sufficiently non-overlapping to provide an image that is not Docket No 20090258 ⁇ I
- the filters A and B are configured to prevent light produced by the projector and scattered or diffused from the screen 402 from interfering with light transmitted through the screen 402 and captured by the camera 404. In the embodiment previously described, this is accomplished using a first type of filter, a polarized filter. However, other types of filters may be used. In an alternative embodiment, this can be achieved using a second type of filter, a wavelength division filter.
- filter B can be configured to transmit a first set of wavelengths ranges that when combined create the visual sensation of a much broader range of colors in projecting images on the display screen 402, and filter A can be configured to transmit a second set of wavelength ranges that are different from the first set of wavelength ranges.
- the second set of wavelength ranges can also be used to create the visual sensation of a much broader range of colors.
- filter A is configured and positioned to block the wavelength ranges that arc used to create images on the display screen 402 from entering the camera lens 408, Even though the wavelength ranges used to produce images viewed by the viewer 414 are different from the wavelengths of light used to capture images by the camera 404.
- the projector 406 can still use the colors transmitted through filter B to project full color images and light transmitted through filter A and captured by the camera 404 can still be used to record and send full color images. It is the component wavelengths of the light used to project and capture the full color images that are prevented from interfering. Similar to the descriptions with respect Docket No. 2009U2583- 1
- wavelength division filters may not completely be non-overlapping so that a filter may substantially block a set of wavelength ranges.
- Figure 5 shows exemplar ⁇ ' plots 502 and 504 of wavelength ranges over which filters A and B, respectively, can be configured to transmit light in accordance with embodiments of the present invention.
- Horizontal line 506 represents the range of wavelengths comprising the visual spectrum.
- Vertical axes 508 and 510 represents intensities of light transmitted through filters A and B, respectively.
- the red, green and blue portions of the spectrum are each split into two halves with curves 51 1-513 representing relatively shorter wavelength rangers of the red, green, and blue portions of visible spectrum transmitted through filter A and curves 515-517 representing relatively longer wavelength ranges of the red, green, and blue portions of visible spectrum transmitted through filter B.
- filters A and B do not transmit the same wavelength ranges of the red, green, and blue portions of the visible spectrum.
- filter A is configured to transmit shorter wavelength ranges of the red, green, and blue portions of the visible spectrum, and substantially block the longer wavelength ranges of the red. green, and blue portions of the spectrum.
- filter B is configured to transmit the longer wavelength ranges of the red, green, and blue portions of the visible spectrum and substantially block the short wavelength ranges of the red, green, and blue portions of the visible spectrum.
- Both sets of red, green, and blue wavelengths can be treated as primary colors that can be combined to produce a full range of colors in projecting images on the display screen 402 and capturing images through the display screen 402.
- filters A and B effectively block the light used to project color images on the display screen 402 form being back scattered and interfering with the color images captured by the camera 404.
- operation of the filters A and B can be reversed.
- filter A can transmit the longer wavelength ranges of the red, green, and blue portions of the visual spectrum while filter B transmits the shorter wavelength ranges of the red. green, and blue portions of the visible spectrum.
- Figure i> shows a visual-collaborative system (->()() configured in accordance with embodiments of the present invention.
- the system 600 is nearly identical to the system Docket No. 200902583- 1
- the projector 602 can be a conventional projector using three microdisplays and color splitting optics that send red, green and blue light from the projector bulb to the corresponding display.
- the microdisplays can be well-known liquid crystal display ("'LCD”), liquid crystal on silicon (“'LCoS”), or digital-rnicron ⁇ rro device (“DMD”) technologies.
- 'LCD liquid crystal display
- 'LCoS liquid crystal on silicon
- DMD digital-rnicron ⁇ rro device
- Filter A is configured to transmit wavelength ranges other than the wavelengths reflected by the color splitter, as described above with reference to Figure 5.
- the internal color splitter can be a series of dichroic mirrors that each reflects one of the primary colors to a separate microdisplay, while passing other wavelengths of light. Each reflected color is modulated by the corresponding microdisplay, and the colors are recombined to produce images that are projected onto the first surface 410. Each microdisplay provides pixelized control of the intensity of one color. The colors not reflected by the color splitter are discarded. For example, in order to produce a red object, the microdisplays corresponding to projecting green and blue light are operated to block green and blue light from passing through the projector 602 lens.
- the lamp producing white light and the internal color splitter of the projector 602 can be replaced by separate lasers, each laser generating a narrow wavelength range of light that when combined with appropriate intensities produce a full range of colors.
- the lamp and internal color splitter can be replaced by three lasers, each laser generating one of the three primary colors, red, green, and blue.
- Each color produced by a different laser passes through a corresponding LCD or is reflected off of a corresponding LCoS and the colors are recombined within the projector 602 to project full color images onto the first surface 410.
- the use of a relatively narrow set of wavelengths at the projector allows the complementary set of wavelengths passed by filter A to be relatively broader, allowing more light into the captured image. Docket No. 200902583- 1
- filler A could be incorporated into the camera optics.
- the color filter mosaic that forms part of a camera's image sensor could be selected to pass only selected wavelengths.
- FIG. 7A shows a visual-collaborative system 700 configured in accordance with embodiments of the present invention.
- the system 700 is nearly identical to the system 400 except filter B arid the projector 406 are replaced with a sequential color projector 702.
- An example of such a projector is a "DMD projector" that includes a single digital rm ' cromirror device and a color wheel filter B comprising red, green, and blue segments.
- the color wheel filter B spins between a lamp and the DMD, sequentially adding red, green, and blue light to the image displayed by the projector 702.
- filter A is replaced by a second color wheel filter A which contains filters that transmit complementary colors to those of filter B.
- the color wheel filter A can use cyan, yellow, and magenta transparent color panels to sequentially block the color being projected through the color wheel filter A.
- Color wheel filters A and B can be synchronized so that when the color wheel filter A transmits one color the color wheel filter B transmits a complementary color. For example, when the red panel of the color wheel filter B passes between the lamp and the DMD of the projector 702, the color red is projected onto the screen 402 while the cyan panel of the color wheel filter A covers the lens 408 enabling the camera 404 to capture only green and blue light and ignore the projected red light.
- Figure 7C shows exemplar ⁇ ' plots 704-706 of wavelength ranges over which color wheel filters A and B, respectively, can be operated to transmit light in accordance with embodiments of the present invention.
- Plot 704 shows that at a first time 7 ⁇ , filter B passes a different range of wavelengths than filter A.
- Plot 705 shows that at a later second time T 2 , filter B passes a range of wavelengths sandwiched between two different wavelength ranges passed by filter A.
- Plot 706 shows that at a later time J 3 , filter B again passes a different range of wavelengths than filter A.
- plots 704-706 reveal that at any given time, filters A and B arc operated to pass different wavelength ranges.
- Plots 704-706 also reveal that filters A and B can be operated to pass wavelengths over the same wavelength ranges, but not at the same time. Docket No. 200902583- 1
- the housing 418 can include fully reflective mirrors that reflect projected images onto a display screen within the range of angles for which the screen is diffusive.
- Figure 8 shows a visual-collaborative system 800 configured in accordance with embodiments of the present invention. The system 800 is nearly identical to the system 400 except mirrors 802 and 804 arc included to reflect images produced by the projector 406 onto a display screen 806 within a range of angle for which the screen 806 is diffusive.
- the visual-collaborative systems described above with reference to Figures 4-8 can be used in interactive video conferencing.
- the camera 404 and projector 406 can be positioned so that the display screen 402 acts as a window to a remote site. This can be accomplished by positioning the camera 404 at approximately eye level to the viewer 414 facing the second surface 416 and at approximately the same distance the viewer 414 would feel comfortable standing away from the screen.
- Figure 9 shows the camera 404 positioned at approximately eye level to the viewer 414 in accordance with embodiments of the present invention, As a result, the viewer 414 appears face-to-face with a second viewer represented by dash ⁇ d-line figure 902 located at a remote site.
- FIG 10 shows a schematic representation of a seventh visual-collaborative system configured in accordance with embodiments of the present invention. As previously stated. Figures 4-9 are shown implemented using a rear-projection configuration. The visual-collaboration systems shown in Figures 10-13 are implemented using a front-projection implementation. The systems are similar in that in both rear and front projection systems project images onto a projection surface where the projected image is visible on the second surface of the display screen. However, the position of the camera and possibly the materials used for the display screen or the display screen configuration may be different.
- the embodiment shown in Figure 10 includes a display screen 402, a camera lens 404, and a projector 406. Docket No. 200902583- 1
- the projector 406 in Figure 10 is positioned in front of the display screen.
- the projector 406 projects an image onto a projecting surface 415,
- the projection surface 415 is the second surface of the display screen 102.
- the projected image is diffusely reflected off the second surface and can be observed by viewing the second surface.
- the display screen 402 is a front-projection display screen.
- the display screen 402 is comprised of a partially diffusing material that diffuses light striking it within a first and second range of angles.
- a viewer 414 facing the outer second surface 416 of the screen 402 sees the images projected onto the screen 402 from the projector 406.
- the screen is configured Io transmit light scattered from objects facing the second surface 416.
- the lens of the camera is positioned to face the first surface 410 so that light from objects facing the second surface 416 pass through the display screen and is captured by the camera 404.
- the display screen is comprised of a material that has a relatively low concentration of diffusing particles embedded within a transparent screen medium.
- the low concentration of diffusing particles allows a camera 404 to capture an image through the screen (providing the subject is well lit), while it diffuses enough of the light from the projector 406 to form an image on the screen.
- the display screen 402 is comprised of a holographic film that has been configured to accept light from the projector 406 within a first range of angles and reflect light that is visible to the viewer 414 within a different range of viewing angles. Sn some cases, the screen's partially diffusing material may not have sufficient reflective properties to reflect the projected image from the second surface of the display screen.
- the display screen includes a half silvered material (not shown) may be positioned directly behind and preferably in contact with the first surface of the display screen.
- the half silvered mirror will allow transmission of light through the display screen while enhancing the reflectivity of the holographic film.
- the light projected onto the second surface within the first range of angles is diffused by the screen and can be observed by viewing the second surface 416 and light scattered off of objects facing the second surface are transmitted through the display screen to the camera.
- light from the projector that is transmitted through the display screen can degrade the performance of the system.
- a filter A disposed between the camera and the first surface of the display screen is used to block the light received by the camera that is produced by the projector.
- a filter B disposed between the projector's light source and the projection surface (in this case the second surface) where the second filter passes light output by the projector that is blocked by the first filter.
- FIG 11 shows a schematic representation of an eight visual- collaborative system configured in accordance with embodiments of the present invention.
- the implementation of the embodiment shown in Figure 1 L is similar to that of Figure 10, except for the camera placement and the addition of a mirror 480.
- the mirror 480 is a completely reflective mirror with an opening 482 for the placement of the filter B. Although the completely reflective mirror improves the projection image, light cannot pass through it. Thus, the camera's position changes.
- the camera is positioned so that it is in physical contact with the display system filter B. Since the camera is not a distance away from the display screen, any writings on the display screen such as is shown in Figure 14, arc not easily viewable.
- FIG. 12 shows a schematic representation of a ninth visual- collaborative system in accordance with embodiments of the present invention.
- the implementation of the embodiment shown in Figure 12 is similar to that shown in Figure 10.
- the display screen is comprised of standard front-projection screen material.
- the replacement of the display screen with standard projection screen material decreases costs.
- the standard projection screen material does not transmit light
- the implementation of a collaborative board as shown in Figures 14A and 1413 is not feasible using this configuration.
- the embodiment shown in Figure 13A-13B the Docket No. 2009U2583- 1
- display screen includes an opening. Similar to the embodiment shown in Figure 12, a filter A is positioned so that the filter covers the opening. A camera is positioned so that it's lens abuts the filters so that light received by the camera is filtered by filter A.
- FIG. 13A-13B shows a schematic representation of a tenth representation of an embodiment of the present invention
- the representation in Figures 13A-13B shows a rear projection screen implementation which is capable of projecting and capturing stereoscopic 3D images.
- the embodiments shown in Figures 13A-13B show a rear projection screen implementation, alternatively the embodiments could be used in a front projection screen implementation, In both the rear projection screen and front projection screen implementations, instead of a single projector, two projectors, a right projector and a left projector are used, although Figures 13A and 13B show two cameras, a right camera and a left camera, alternatively a single camera may be used. In the case where two cameras and two projectors are used, the remote user and the projected image will both appear in 3D. In the embodiment where a single camera is used, the remote user will no longer appear in 3D, however, the projected image will still appear in 3D.
- each projector has an identical wavelength division filter.
- the projector two different filters (a polarizing filter and a wavelength division filter) are used for each projector.
- the projectors used in the described implementation are the type which result in no polarization of the light output from the projectors.
- the two wavelength division filters A are identical.
- the two polarizing filters are of the same type.
- the two polarizing filters are circularly polarized filters where one filters is a right circularly polarized filter and the other filter is left circularly polarized filter.
- the polarized filters arc linearly polarized where the two polarizing Docket No. 2009U2583- 1
- filters arc preferably orthogonal to each other.
- a 45 degree polarizing filter is used for the polarizing filter L and a wavelength division color filter is used for WD filter A.
- a -45 degree polarizing filter is used for polarizing filter R and a wavelength division color filter is used for WD filter A.
- the two wavelength division color filters used for the Right Projector and the Left Projector should be identical.
- the iD image can be seen using L&R polarizing glasses.
- each projector instead of the filters for the cameras being identical wavelength division filters, they are identical polarizing filters B.
- each projector again each projector has two corresponding different filters (a polarizing filter and a wavelength division filter).
- the projectors used in the described implementation are the type which result in no polarization of the light output from the projectors.
- the two filters used in conjunction with the projectors are wavelength division filters that block different components of light
- the polarizing filters used in conjunction with the projectors are of the same type.
- the 3D image can be seen using wavelength division L&R glasses.
- Figure 14 A shows an isometric view of an interactive video conference between the viewer 414 and a projected image of a second viewer 1002 located at a remote site in accordance with embodiments of the present invention.
- the second viewer 902 is projected on the display screen 402 by the projector (not shown), as described above with reference to Figures 4-13.
- a visual-collaborative system configured in accordance with embodiments of the present invention enables the second viewer 1002 to visually display and present an object 1004 for the viewer 414 from the remote site.
- the second surface 416 of the display screen 402 can be configured or coated with a transparent and erasable material enabling the viewer 414 to write and erase on the second surface 416 during an interactive video conference.
- a transparent, electronic, interactive surface e.g., a touch screen
- FIG. 14B shows an isometric view of a video conference between the viewer 414 and the second viewer 1002 with the second surface 416 configured as a transparent writing surface in accordance with embodiments of the present invention.
- the viewer 414 has drawn a graph 1006 on the second surface 416.
- the camera 404 located behind the screen 402 captures an image of the viewer 402 and the graph 1006, which can be observed by the second viewer 1002.
- the display screen 402 also exhibits a pie chart 1008 drawn by the second viewer 702 on a similar transparent writing surface at the remote site.
- the projector 406 (not shown) displays the second viewer 1002 and the chart 1008 for observation by the viewer 414.
- FIG. 15 shows a flow diagram for a method for video collaborative interaction method in accordance with embodiments of the present invention.
- Steps 1101-1104 do not have to be completed in any particular order and can be performed at the same time.
- images captured at a remote site arc projected on a rear or front projection display screen, as described above with reference to Figures 4-13.
- the projected images are filtered, as described above with reference to Figures 4- 14.
- step 1 103 light is filtered.
- the filters are wavelength division filters, the wavelengths of light reflected and emitted from objects pass through the display screen and are filtered so that the wavelengths of light used to project images on the display screen are different from the wavelengths of light passing through the screen, as described above with reference to Figure 5.
- the wavclenghts of light passing through the screen are captured, as described above with reference to Figures 4- 7.. Docket No. 2009U2583- 1
- Embodiments of the present invention have been demonstrated using a dnp HoIo ScreenTM from DNP, a Canon Vixia HF 100 HD camcorder, and a Mitsubishi HC600HD projector. Images were projected onto the holographic screen at an angle of approximately 35° from a distance of approximately 8ft. The optical path length was folded using a visual-collaborative system similar to the system 800, described above with reference to Figure 8. The camera was positioned to a have a view of the back of the holographic screen from an average eye height and a distance of approximately 2ft, which is roughly the distance a viewer stands from the screen.
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Abstract
Description
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201080018939.0A CN102415094B (en) | 2009-04-29 | 2010-04-29 | Systems for capturing images through a display |
| DE112010001819T DE112010001819T5 (en) | 2009-04-29 | 2010-04-29 | SYSTEMS FOR RECORDING IMAGES BY ONE DISPLAY |
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| US12/432,550 US8488042B2 (en) | 2009-01-28 | 2009-04-29 | Systems for capturing images through a display |
| US12/432,550 | 2009-04-29 |
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| WO2010127165A2 true WO2010127165A2 (en) | 2010-11-04 |
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| CN (1) | CN102415094B (en) |
| DE (1) | DE112010001819T5 (en) |
| WO (1) | WO2010127165A2 (en) |
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| KR101779564B1 (en) | 2010-09-10 | 2017-09-20 | 삼성전자주식회사 | Method and Apparatus for Motion Recognition |
| US20120154595A1 (en) * | 2010-12-17 | 2012-06-21 | Sony Ericsson Mobile Communications Ab | Integrated Camera-Projection Device |
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| US9160966B2 (en) | 2011-05-11 | 2015-10-13 | Microsoft Technology Licensing, Llc | Imaging through a display screen |
| JP5987899B2 (en) * | 2012-03-30 | 2016-09-07 | 富士通株式会社 | Generating device, generating program, and generating method |
| US20130290874A1 (en) * | 2012-04-27 | 2013-10-31 | Kar-Han Tan | Programmatically adjusting a display characteristic of collaboration content based on a presentation rule |
| TWI464452B (en) * | 2012-08-27 | 2014-12-11 | Delta Electronics Inc | Display and display method thereof |
| CN103076983B (en) * | 2013-01-28 | 2015-09-09 | 中国科学技术大学 | A kind of touch-screen man-machine interactive system based on laser projection |
| US9392219B2 (en) | 2013-07-31 | 2016-07-12 | Howlett-Packard Development Company, L.P. | Display-camera system |
| US9602191B2 (en) * | 2014-06-27 | 2017-03-21 | X Development Llc | Streaming display data from a mobile device using backscatter communications |
| US10104276B2 (en) | 2014-07-31 | 2018-10-16 | Hewlett-Packard Development Company, L.P. | Projector as light source for an image capturing device |
| CN105306853A (en) * | 2014-07-31 | 2016-02-03 | 联想(北京)有限公司 | Image acquisition equipment and control method thereof, as well as projection interaction system and control method thereof |
| US10429968B2 (en) * | 2014-11-06 | 2019-10-01 | Visteon Global Technologies, Inc. | Reconfigurable messaging assembly |
| US10097892B2 (en) * | 2015-01-23 | 2018-10-09 | Turner Broadcasting System, Inc. | Method and system for production and capture of content for linear broadcast and publication |
| CN104656991A (en) * | 2015-02-13 | 2015-05-27 | 无锡市崇安区科技创业服务中心 | Conference writing board based on point-to-point two-way transmission |
| US10531070B2 (en) * | 2015-12-07 | 2020-01-07 | Koc Universitesi | Dual function display and multi-view imaging system |
| DE102018115302A1 (en) | 2018-06-26 | 2020-01-02 | Universität Kassel | Presentation system and presentation method |
| JP7147336B2 (en) * | 2018-07-31 | 2022-10-05 | セイコーエプソン株式会社 | Projection method and projection system |
| GB2598397B (en) * | 2020-09-01 | 2024-08-14 | Uni Glory Holdings Ltd | A chroma key and presentation system, method, and kit |
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- 2010-04-29 CN CN201080018939.0A patent/CN102415094B/en not_active Expired - Fee Related
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- 2010-04-29 WO PCT/US2010/033041 patent/WO2010127165A2/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| DE112010001819T5 (en) | 2012-06-14 |
| WO2010127165A3 (en) | 2011-02-03 |
| CN102415094B (en) | 2014-10-29 |
| CN102415094A (en) | 2012-04-11 |
| US20100188548A1 (en) | 2010-07-29 |
| US8488042B2 (en) | 2013-07-16 |
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