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Patent · US10321104B2 · B2 · US

Multi-modal projection display

(11) Publication number
US10321104B2
(21) Application number
15/353,578
(22) Filing date
2016-11-16
(30) Priority date
2016-02-18
(43) Publication date
2019-06-11
(45) Date of grant
2019-06-11
(51) IPC
B25J 11/00; G03B 21/00; G03B 21/10; G03B 21/14; G03B 21/28; G06F 3/01; G06F 3/03; G06F 3/16; H04N 7/18; H04N 9/31
(52) CPC
  • H04N Pictorial communication, e.g. television: 9/3152, 7/18, 7/183, 9/3141, 9/3147, 9/3185, 9/3194
  • B25J Manipulators; chambers provided with manipulation devices: 11/0015
  • G03B Apparatus or arrangements for taking photographs or for projecting or viewing them; apparatus or arrangements employing analogous techniques using waves other than optical waves; accessories therefor: 21/00, 21/10, 21/142, 21/145, 21/28, 21/56
  • G06F Electric digital data processing: 3/011, 3/013, 3/0304, 3/167
(73) Assignee
Samsung Electronics Co Ltd
(72) Inventors
Tao Ma
(54) Title
Multi-modal projection display
(57) Abstract

A multi-modal display device is presented. The display device has a shell having an internal projection screen and an opening, a projector emitting a projection beam from inside the shell. There is an optical guide adjusting a position of the projector to aim the projection beam at either the internal projection screen or the opening. A processor coupled to the optical guide may select a display position, wherein different display positions are associated with different display area sizes. The method includes determining a distance between a projector and a user, and automatically selecting a display mode based on the distance.

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Claims (14)

  1. A device comprising: a shell having an internal projection screen and an opening; a projector emitting a projection beam from inside the shell; an optical guide inside the shell, the optical guide adjustably aiming the projection beam in one of a first direction and a second direction, the first direction being toward the internal projection screen and away from the opening, and the second direction being toward the opening; a sensor determining a distance between a user and the internal projection screen and continuously monitoring an amount of ambient light around the device, wherein monitoring an amount of ambient light involves comparing the amount of ambient light with a threshold scope; a processor coupled to the sensor and in communication with the optical guide, the processor selecting a direction in which the projection beam is aimed based on the distance; and a moving mechanism coupled to the optical guide, wherein the moving mechanism adjusts the position of the projector according to the direction that is selected by the processor, and wherein the processor selects the direction based on a type of visual content and the amount of ambient light around the device.
  2. The device of claim 1, wherein the sensor comprises a camera.
  3. The device of claim 1, wherein the processor dynamically adjusts the position of the projector based on the distance.
  4. The device of claim 3, wherein the projector aims the projection beam at the internal projection screen if the distance satisfies a threshold range, and wherein the projector aims the projection beam through the opening if the distance does not satisfy the threshold range.
  5. The device of claim 1, wherein the selected direction is at the internal projection screen if the amount of ambient light satisfies the threshold scope, and wherein the selected direction is at the opening if the amount of ambient light does not satisfy the threshold scope.
  6. The device of claim 1, further comprising a distance measurement unit configured to measure a length between the projector and a projection surface if the projection beam is aimed at the opening, such that the processor automatically sets a focal length according to the length.
  7. The device of claim 1, wherein the optical guide comprises a rotatable mirror.
  8. The device of claim 1, wherein the opening comprises a transparent window.
  9. A method, comprising: emitting, by a projector, a projection beam from inside a shell of an electronic device; determining, by using a sensor, a distance between a user and an internal projection screen that is part of the shell, and an amount of ambient light around the electronic device; selecting, by the processor, a direction in which the projection beam is aimed based on a type of visual content and whether the amount of ambient light around the electronic device satisfies a threshold scope; and adjusting, by an optical guide inside the shell and based on the distance, the direction of the projection beam such that the projection beam is aimed either at the internal projection screen from inside the shell or at an opening in the shell.
  10. The method of claim 9, further comprising dynamically adjusting, by the processor, the position of the projector based on the distance.
  11. The method of claim 10, further comprising aiming, by the projector, the projection beam at the internal projection screen if the distance is outside a threshold range, and through the opening if the distance is within the threshold range.
  12. The method of claim 9, further comprising aiming, by the projector, the projection beam at the internal projection screen if the amount of ambient light satisfies the threshold scope; and aiming, by the projector, the projection beam at the internal projection screen if the amount of ambient light does not satisfy the threshold scope.
  13. The method of claim 9, further comprising: measuring a range between the projector and a projection surface if the projection beam is aimed through the opening; setting, by the processor, automatically a focal length according to the range.
  14. A device comprising: a shell having an internal projection screen and an opening; a projector emitting a projection beam from inside the shell; an optical guide inside the shell, the optical guide adjustably aiming the projection beam in one of a first direction and a second direction, the first direction being toward the internal projection screen and away from the opening, and the second direction being toward the opening; a sensor determining a distance between a user and the internal projection screen; a processor coupled to the sensor and in communication with the optical guide, the processor selecting a direction in which the projection beam is aimed based on the distance; and a moving mechanism coupled to the optical guide, wherein the moving mechanism adjusts the position of the projector according to the direction that is selected by the processor, and wherein the processor selects the first direction if the distance satisfies a threshold range and a type of visual content is not a movie or a video, the processor selects the second direction if the distance does not satisfy the threshold range and the type of visual content is a movie or a video.

Description

Today, electronic devices are becoming increasingly multi-functional. Often, functions that were once served by two or three separate devices are now combined into a single multi-functional device. For example, while a fax machine, a scanner, and a copier used to require three separate machines that each only performed one function, a single machine today can serve all three purposes. Such multi-functionality minimizes clutter and simplifies life.

One of the areas where it is difficult to consolidate a plurality of devices into a single device is the area of display devices. Generally, a display device has a specific fixed display size and can only display images on that fixed-size display. For example, a digital clock has a small display, and a user has to stand close to the clock to read the visual content. It is difficult to consolidate a large screen function like a television with a small-screen device like a tablet into a single multi-functional device and achieve significant space/size reduction.

A single device that can fulfill both large-screen functions and small-screen function is desired.

In one aspect, the present disclosure pertains to a device comprising a shell that has an internal projection screen and an opening, and a projector emitting a projection beam from inside the shell. There is an optical guide adjusting a position of the projector to aim the projection beam at one of the internal projection screen and the opening.

Citations (16)

  • US20010046034A1
  • US20020113912A1
  • DE10357726B3
  • US7134756B2
  • US20080259289A1
  • DE102005049825A1
  • US8042949B2
  • US8427511B2
  • WO2010124267A1
  • US9218027B2
  • US20120092337A1
  • CN102707557A
  • US20160003636A1
  • US20170031530A1
  • US20160364007A1
  • US20160292921A1
Record as JSON
{
  "publication_number": "US10321104B2",
  "country": "US",
  "kind": "B2",
  "title": "Multi-modal projection display",
  "abstract": "A multi-modal display device is presented. The display device has a shell having an internal projection screen and an opening, a projector emitting a projection beam from inside the shell. There is an optical guide adjusting a position of the projector to aim the projection beam at either the internal projection screen or the opening. A processor coupled to the optical guide may select a display position, wherein different display positions are associated with different display area sizes. The method includes determining a distance between a projector and a user, and automatically selecting a display mode based on the distance.",
  "claims": [
    "1. A device comprising: a shell having an internal projection screen and an opening; a projector emitting a projection beam from inside the shell; an optical guide inside the shell, the optical guide adjustably aiming the projection beam in one of a first direction and a second direction, the first direction being toward the internal projection screen and away from the opening, and the second direction being toward the opening; a sensor determining a distance between a user and the internal projection screen and continuously monitoring an amount of ambient light around the device, wherein monitoring an amount of ambient light involves comparing the amount of ambient light with a threshold scope; a processor coupled to the sensor and in communication with the optical guide, the processor selecting a direction in which the projection beam is aimed based on the distance; and a moving mechanism coupled to the optical guide, wherein the moving mechanism adjusts the position of the projector according to the direction that is selected by the processor, and wherein the processor selects the direction based on a type of visual content and the amount of ambient light around the device.",
    "2. The device of claim 1, wherein the sensor comprises a camera.",
    "3. The device of claim 1, wherein the processor dynamically adjusts the position of the projector based on the distance.",
    "4. The device of claim 3, wherein the projector aims the projection beam at the internal projection screen if the distance satisfies a threshold range, and wherein the projector aims the projection beam through the opening if the distance does not satisfy the threshold range.",
    "5. The device of claim 1, wherein the selected direction is at the internal projection screen if the amount of ambient light satisfies the threshold scope, and wherein the selected direction is at the opening if the amount of ambient light does not satisfy the threshold scope.",
    "6. The device of claim 1, further comprising a distance measurement unit configured to measure a length between the projector and a projection surface if the projection beam is aimed at the opening, such that the processor automatically sets a focal length according to the length.",
    "7. The device of claim 1, wherein the optical guide comprises a rotatable mirror.",
    "8. The device of claim 1, wherein the opening comprises a transparent window.",
    "9. A method, comprising: emitting, by a projector, a projection beam from inside a shell of an electronic device; determining, by using a sensor, a distance between a user and an internal projection screen that is part of the shell, and an amount of ambient light around the electronic device; selecting, by the processor, a direction in which the projection beam is aimed based on a type of visual content and whether the amount of ambient light around the electronic device satisfies a threshold scope; and adjusting, by an optical guide inside the shell and based on the distance, the direction of the projection beam such that the projection beam is aimed either at the internal projection screen from inside the shell or at an opening in the shell.",
    "10. The method of claim 9, further comprising dynamically adjusting, by the processor, the position of the projector based on the distance.",
    "11. The method of claim 10, further comprising aiming, by the projector, the projection beam at the internal projection screen if the distance is outside a threshold range, and through the opening if the distance is within the threshold range.",
    "12. The method of claim 9, further comprising aiming, by the projector, the projection beam at the internal projection screen if the amount of ambient light satisfies the threshold scope; and aiming, by the projector, the projection beam at the internal projection screen if the amount of ambient light does not satisfy the threshold scope.",
    "13. The method of claim 9, further comprising: measuring a range between the projector and a projection surface if the projection beam is aimed through the opening; setting, by the processor, automatically a focal length according to the range.",
    "14. A device comprising: a shell having an internal projection screen and an opening; a projector emitting a projection beam from inside the shell; an optical guide inside the shell, the optical guide adjustably aiming the projection beam in one of a first direction and a second direction, the first direction being toward the internal projection screen and away from the opening, and the second direction being toward the opening; a sensor determining a distance between a user and the internal projection screen; a processor coupled to the sensor and in communication with the optical guide, the processor selecting a direction in which the projection beam is aimed based on the distance; and a moving mechanism coupled to the optical guide, wherein the moving mechanism adjusts the position of the projector according to the direction that is selected by the processor, and wherein the processor selects the first direction if the distance satisfies a threshold range and a type of visual content is not a movie or a video, the processor selects the second direction if the distance does not satisfy the threshold range and the type of visual content is a movie or a video."
  ],
  "description_excerpt": "Today, electronic devices are becoming increasingly multi-functional. Often, functions that were once served by two or three separate devices are now combined into a single multi-functional device. For example, while a fax machine, a scanner, and a copier used to require three separate machines that each only performed one function, a single machine today can serve all three purposes. Such multi-functionality minimizes clutter and simplifies life.\n\nOne of the areas where it is difficult to consolidate a plurality of devices into a single device is the area of display devices. Generally, a display device has a specific fixed display size and can only display images on that fixed-size display. For example, a digital clock has a small display, and a user has to stand close to the clock to read the visual content. It is difficult to consolidate a large screen function like a television with a small-screen device like a tablet into a single multi-functional device and achieve significant space/size reduction.\n\nA single device that can fulfill both large-screen functions and small-screen function is desired.\n\nIn one aspect, the present disclosure pertains to a device comprising a shell that has an internal projection screen and an opening, and a projector emitting a projection beam from inside the shell. There is an optical guide adjusting a position of the projector to aim the projection beam at one of the internal projection screen and the opening.",
  "cpc": [
    "H04N 9/3152",
    "B25J 11/0015",
    "G03B 21/00",
    "G03B 21/10",
    "G03B 21/142",
    "G03B 21/145",
    "G03B 21/28",
    "G03B 21/56",
    "G06F 3/011",
    "G06F 3/013",
    "G06F 3/0304",
    "G06F 3/167",
    "H04N 7/18",
    "H04N 7/183",
    "H04N 9/3141",
    "H04N 9/3147",
    "H04N 9/3185",
    "H04N 9/3194"
  ],
  "ipc": [
    "B25J 11/00",
    "G03B 21/00",
    "G03B 21/10",
    "G03B 21/14",
    "G03B 21/28",
    "G06F 3/01",
    "G06F 3/03",
    "G06F 3/16",
    "H04N 7/18",
    "H04N 9/31"
  ],
  "assignees": [
    "Samsung Electronics Co Ltd"
  ],
  "inventors": [
    "Tao Ma"
  ],
  "filing_date": "2016-11-16",
  "publication_date": "2019-06-11",
  "grant_date": "2019-06-11",
  "priority_date": "2016-02-18",
  "application_number": "US-201615353578-A",
  "family_id": "59629595",
  "cited_by_count": 6,
  "citations": [
    "US20010046034A1",
    "US20020113912A1",
    "DE10357726B3",
    "US7134756B2",
    "US20080259289A1",
    "DE102005049825A1",
    "US8042949B2",
    "US8427511B2",
    "WO2010124267A1",
    "US9218027B2",
    "US20120092337A1",
    "CN102707557A",
    "US20160003636A1",
    "US20170031530A1",
    "US20160364007A1",
    "US20160292921A1"
  ]
}

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