HOLOGRAM DISPLAY DEVICE AND DISPLAY METHOD THEREOF
20180067456 ยท 2018-03-08
Inventors
Cpc classification
G03H1/2294
PHYSICS
International classification
Abstract
The present disclosure provides a hologram display device and a display method thereof. The hologram display device includes an imaging unit including a plurality of imaging regions, wherein each imaging region forms a hologram image independently; a light source unit including a plurality of light sources arranged in an array, wherein each light source provides light to the imaging unit; an eye tracking unit that determines positions of both eyes of a viewer; and a controller that controls at least a part of the light sources and at least a part of the imaging regions to be turned on to perform hologram display according to the positions of both eyes of the viewer, so that light emitted from a turned-on light source passes through a turned-on imaging region and then irradiates towards the positions of both eyes of the viewer.
Claims
1. A hologram display device, comprising an imaging unit comprising a plurality of imaging regions, wherein each imaging region is configured to form a hologram image independently; a light source unit comprising a plurality of light sources arranged in an array, wherein each light source is configured to provide light to the imaging unit; an eye tracking unit configured to determine positions of both eyes of a viewer; and a controller configured to control at least a part of the light sources and at least a part of the imaging regions to be turned on to perform hologram display according to the positions of both eyes of the viewer, so that light emitted from a turned-on light source passes through a turned-on imaging region and then irradiates towards the positions of both eyes of the viewer.
2. The hologram display device according to claim 1, wherein the imaging unit is a spatial light modulator comprising the plurality of imaging regions.
3. The hologram display device according to claim 1, wherein the imaging unit comprises a plurality of spatial light modulators,each of which serving as one of the imaging regions.
4. The hologram display device according to claim 2, wherein the spatial light modulator is a liquid crystal display spatial light modulator.
5. The hologram display device according to claim 3, wherein the spatial light modulator is a liquid crystal display spatial light modulator.
6. The hologram display device according to claim 1, further comprising a first adjustment unit provided between the light source unit and the imaging unit and configured to expand and collimate light emitted from the light source unit.
7. The hologram display device according to claim 6, wherein the first adjustment unit comprises a plurality of expansion collimator lens sets.
8. The hologram display device according to claim 7, wherein each of the plurality of expansion collimator lens sets comprises one large lens and one small lens having a smaller size than that of the large lens, a focal point of the large lens positioned proximal to the small lens overlaps a focal point of the small lens positioned proximal to the large lens.
9. The hologram display device according to claim 1, further comprising a second adjustment unit provided at a light emergent side of the imaging unit and configured to converge light emitted through the imaging unit.
10. The hologram display device according to claim 9, wherein the second adjustment unit comprises a plurality of liquid crystal lenses and/or a plurality of optical convex lenses.
11. The hologram display device according to claim 1, wherein the eye tracking unit comprises any one of a camera, an eye tracker, and an infrared sensor.
12. The hologram display device according to claim 1, wherein the light source unit comprises light sources having a plurality of different colors.
13. The hologram display device according to claim 1, wherein each of the plurality of light sources is a light emitting diode or a laser source.
14. A display method of the hologram display device according to claim 1, comprising steps of determining positions of both eyes of a viewer by the eye tracking unit; and controlling, by the controller, at least a part of the light sources and at least a part of the imaging regions to be turned on to perform hologram display according to the positions of both eyes of the viewer, so that light emitted from a turned-on light source passes through a turned-on imaging region and then irradiates towards the positions of both eyes of the viewer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0034] To make one of ordinary skill in the art better understand the technical solutions according to the present disclosure, the present disclosure will be further described in detail below with reference to the accompanying drawings and embodiments..
[0035] Some embodiments of the present disclosure provide a hologram display device, as shown in
[0036] an imaging unit including a plurality of imaging regions 11, wherein each imaging region 11 is configured to form a hologram image 9 independently;
[0037] a light source unit including a plurality of light sources 2 arranged in an array, wherein each light source 2 is configured to provide light to the imaging unit;
[0038] an eye tracking unit 3 configured to determine positions of both eyes of a viewer (i.e. user); and
[0039] a controller 4 configured to control at least a part of the light sources 2 and at least a part of the imaging regions 11 to be turned on to perform hologram display according to the positions of both eyes of the viewer, so that light emitted from a turned-on light source 2 passes through a turned-on imaging region 11 and then irradiates towards the positions of both eyes of the viewer. It should be understood that, a data source for forming the hologram image 9 may be applied to at least the turned-on imaging regions 11 under the control of the controller 4. Further, the controller 4 may include a memory for storing the data source. Alternatively, the data source may be stored in an external storage device connected to the controller 4.
[0040] As shown in
[0041] Correspondingly, the imaging unit is provided at a light emergent side of the light source unit, and can form the hologram image 9 by using the light emitted from the light source unit. The imaging unit according to the present embodiment includes the plurality of imaging regions 11, and each of the imaging regions 11 can form the hologram image 9 independently. In the embodiments of the present disclosure, a division manner in which the imaging unit is divided into the plurality of imaging regions 11 may be various. As shown in
[0042] Light emitted from light sources 2 at different positions in the array of the light source unit may irradiate towards different positions (i.e., may form hologram images 9 at different positions, respectively) after passing through a same imaging region 11. Thus, as shown in
[0043] It is to be understood that light sources 2 and imaging regions 11 corresponding to the positions of the eyes refer to light sources 2 and imaging regions 11 that can form a hologram image 9 visible for a viewer whose eyes are at the said positions.
[0044] In an embodiment of the present disclosure, when a certain imaging region 11 is to form the hologram image 9 at a certain position, the imaging region 11 may use light emitted from only one light source 2, or may use light emitted from multiple light sources 2.
[0045] In an embodiment of the present disclosure, it is possible that light emitted from different light sources 2 may form the hologram image 9 at a same position after passing through different imaging regions 11, respectively. In this case, the light sources 2 and the imaging regions 11 that can provide a better display effect may be selected to form the hologram image 9 according to positions of both eyes of a viewer. Alternatively, light sources 2 and imaging regions 11 to form the hologram image 9 may be determined in another way, for example, the previously turned-on light sources 2 and the previously turned-on imaging regions 11 may be continuously used until they cannot form the hologram image 9 at a desired position.
[0046] As an implementation of the present embodiment, the imaging unit may optionally be a spatial light modulator 1 including the plurality of imaging regions 11.
[0047] That is, as shown in
[0048] As another implementation of the present embodiment, the imaging unit may optionally include a plurality of spatial light modulators 1, and each of the plurality of spatial light modulators 1 may serve as one imaging region 11.
[0049] That is, as shown in
[0050] Further optionally, the spatial light modulator 1 may be a liquid crystal display spatial light modulator (LCD-SLM) 1.
[0051] Optionally, the hologram display device according to the present embodiment of the present disclosure may further include a first adjustment unit provided between the light source unit and the imaging unit and configured to expand and collimate light emitted from the light source unit.
[0052] Further optionally, the first adjustment unit may include a plurality of expansion collimator lens sets 51.
[0053] An imaging unit such as the spatial light modulator 1 or the like may adopt collimated light to realize hologram display, and the first adjustment unit may be provided for expanding and collimating the light emitted from the light source unit, as shown in
[0054] Optionally, the hologram display device may further include a second adjustment unit provided at a light emergent side of the imaging unit and configured to converge light emitted through the imaging unit.
[0055] Further optionally, the second adjustment unit may include a plurality of liquid crystal lenses 52 and/or a plurality of optical convex lenses.
[0056] That is, as shown in
[0057] Optionally, the first adjustment unit and/or the second adjustment unit may be omitted. For example, the second adjustment unit is omitted from the hologram display device as shown in
[0058] Optionally, the light source unit may include light sources having a plurality of different colors.
[0059] That is, the light sources 2 in the array of the light source unit may include light sources having a plurality of different colors such as red, green, and blue, and thus the hologram display device can realize color display. For example, as shown in
[0060] Optionally, each of the plurality of light sources 2 may be a light emitting diode or a laser source.
[0061] That is, a light emitting diode (LED) or a laser source may be taken as each of the light sources 2 in a specific application. It should be noted that, the light sources 2 are not limited to light sources having a plurality of different colors, and the light sources 2 in the form of a light emitting diode or a laser source may be of a single color.
[0062] Optionally, the eye tracking unit 3 may include any one of a camera, an eye tracker, and an infrared sensor. The camera can collect an image of a viewer, and analyze the image to recognize both eyes of the viewer therein and determine positions of both eyes of the viewer. The eye tracker can track positions of both eyes of a viewer directly. The infrared sensor can determine positions of both eyes of a viewer according to the infrared light emitted from both eyes of the viewer. The eye tracking unit 3 can send the obtained positions of both eyes of a viewer to the controller 4.
[0063] The controller 4 can control at least a part of the light sources 2 and at least a part of the imaging regions 11 to be turned on to perform hologram display according to the positions of both eyes of the viewer. That is, the controller 4 can control at least a part of the imaging regions 11 and the corresponding light sources 2 to be turned on, so that light emitted from each of the turned-on light sources 2 passes through a turned-on imaging region 11 and then irradiates towards the positions of both eyes of the viewer, thereby allowing the viewer to see the hologram image 9 at different positions. In this way, a viewable range of the hologram image 9 is increased, and multiple viewers are allowed to view hologram images at the same time.
[0064] Some embodiments of the present disclosure further provide a display method of a hologram display device, wherein the hologram display device is the hologram display device as described above. The display method may specifically include steps of
[0065] determining positions of both eyes of a viewer by the eye tracking unit; and
[0066] controlling, by the controller, at least a part of the light sources and at least a part of the imaging regions to be turned on to perform hologram display according to the determined positions of both eyes of the viewer, so that light emitted from each of the turned-on light sources passes through a turned-on imaging region and then irradiates towards the determined positions of both eyes of the viewer.
[0067] That is, when hologram display is performed by using the hologram display device, positions of both eyes of a viewer may be continuously determined by using the eye tracking unit, and at least a part of the light sources and the corresponding imaging regions may be selected to be turned on to perform hologram display according to current positions of both eyes of the viewer, so that light emitted from each of the turned-on light sources passes through a turned-on imaging region and then irradiates towards the current positions of both eyes of the viewer, thereby ensuring the viewer can see the hologram image while the viewer moves.
[0068] Optionally, in the case where there exist plural viewers, the eye tracking unit can track positions of both eyes of each of the plural viewers, and plural imaging regions and the corresponding light sources are turned on, so that light emitted from the currently turned-on light sources passes through the currently turned-on imaging regions and then irradiates towards the positions of left and right eyes of the plural viewer, thereby realizing the effect that the plural viewers can see hologram images at the same time.
[0069] It should be understood that, the above embodiments are only exemplary embodiments for the purpose of explaining the principle of the present disclosure, and the present disclosure is not limited thereto. For one of ordinary skill in the art, various improvements and modifications may be made without departing from the spirit and essence of the present disclosure. These improvements and modifications also fall within the protection scope of the present disclosure.