The present application claims priority from, Taiwan Application Serial Number 99122382, filed on Jul. 7, 2010, the disclosure of which is hereby incorporated by reference herein in its entirety.
1. Field of Invention
The present invention relates to a display device. More particularly, the present invention relates to a stereoscopic display device and its displaying method.
2. Description of Related Art
Most stereoscopic display technology is creating or enhancing the illusion of depth in an image by presenting two offset images separately to the left and right eye of the viewer. In particular, a stereoscopic display would provide two different polarized left-eye visible image and right-eye visible image. When the viewer wears an active polarizer or a passive polarizer, his or her left eye and right eye can see left-eye visible image and right-eye visible image, thereby constituting a stereoscopic image in the viewer's brain.
For a conventional stereoscopic display technology applied on a LCD display device, the viewer needs to wear an active polarizer in order to see the left-eye visible images and right-eye visible images, respectively. The viewer who wears the active polarizer would easily feel uncomfortable and tired. Besides, the active polarizer is costly than the passive polarizer is.
Most conventional stereoscopic display technologies using passive polarizer are applied on the projector, e.g. the projectors in the cinema theater. It usually requires two projectors to provide left-eye visible images and right-eye visible images with half resolutions to constitute full resolution visible images. Also the left and right eye images have to be perfectly aligned to produce accurate stereoscopic image without shivering. It is neither convenient nor easy to install such stereoscopic display system with such requirements in a common home.
However, more and more 3-D videos and games are available in the consumer electronic market, a stereoscopic display system is thus desired. For the forgoing reasons, there is a need for inventing an economic and comfortable stereoscopic display system.
It is therefore an objective of the present invention to provide an improved stereoscopic display technology.
In accordance with the foregoing and other objectives of the present invention, a stereoscopic display device is provided to include a display panel, two different polarized backlights and a synchronization module. The display panel is to alternately generate left-eye visible images and right-eye visible images. The two different polarized backlights are to alternately illuminate the display panel so as to output the left-eye visible images and right-eye visible images, respectively. The synchronization module is to synchronize the left-eye visible images and right-eye visible images with illumination periods of the respective polarized backlights.
According to an embodiment disclosed herein, the two different polarized backlights are two types of linearly-polarized backlights.
According to another embodiment disclosed herein, the two types of linearly-polarized backlights includes a vertically-polarized backlight and a horizontally-polarized backlight.
According to another embodiment disclosed herein, the two different polarized backlights are two types of circularly-polarized backlights.
According to another embodiment disclosed herein, the two types of circularly-polarized backlights include a clockwise-polarized backlight and a counter-clockwise-polarized backlight.
According to another embodiment disclosed herein, the two different polarized backlights includes two cold-cathode fluorescent lamps.
According to another embodiment disclosed herein, the two different polarized backlights includes two LED light bars.
According to another embodiment disclosed herein, the display panel is a LCD display panel.
According to another embodiment disclosed herein, the display panel is a non-active illuminative display panel.
According to another embodiment disclosed herein, the two different polarized backlights consist essentially of a single light source, a single transflective prism and two polarizing lens sets, each polarizing lens set includes a reflector, a switch shutter and a polarizing lens. The switch shutter is located between the reflector and the single light source. The polarizing lens is located between the single transflective prism and the reflector.
According to another embodiment disclosed herein, the two polarizing lens sets include two different types of linearly-polarized polarizing lenses.
According to another embodiment disclosed herein, one of the two different types of linearly-polarized polarizing lenses is a vertically-polarized polarizing lens, and the other of the two different types of linearly-polarized polarizing lenses is a horizontally-polarized polarizing lens.
According to another embodiment disclosed herein, the two polarizing lens sets comprise two different types of circularly-polarized polarizing lenses.
According to another embodiment disclosed herein, one of the two different types of circularly-polarized polarizing lenses is a clockwise-polarized polarizing lens, and the other of the two different types of circularly-polarized polarizing lenses is a counter-clockwise-polarized polarizing lens.
According to another embodiment disclosed herein, the synchronization module is electrically connected with the display panel and each switch shutter of the two polarizing lens sets.
According to another embodiment disclosed herein, the two polarizing lens sets define two different types of linearly-polarized backlight routes respectively.
According to another embodiment disclosed herein, one of the two different types of linearly-polarized backlight routes is a vertically-polarized backlight route, and the other of the two different types of linearly-polarized backlight routes is a horizontally-polarized backlight route.
According to another embodiment disclosed herein, the two polarizing lens sets define two different types of circularly-polarized backlight routes respectively.
According to another embodiment disclosed herein, one of the two different types of circularly-polarized backlight routes is a clockwise-polarized backlight route, and the other of the two different types of linearly-polarized backlight routes is a counter-clockwise-polarized backlight route.
In accordance with the foregoing and other objectives of the present invention, a stereoscopic image displaying method includes the following steps. A display panel is used to alternately generate left-eye visible images and right-eye visible images. Two different polarized backlights are used to alternately illuminate the display panel so as to output the left-eye visible images and right-eye visible images, respectively. The left-eye visible images and right-eye visible images are synchronized with illumination periods of the respective polarized backlights.
Thus, the stereoscopic display device disclosed herein utilizes two different types of polarized backlights to alternately illuminates the display panel for alternately generates left-eye visible images and right-eye visible images, thereby combining to form stereoscopic visible images.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention. In the drawings,
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Referring to
When the backlight 101a emits light (referring to
When the backlight 101b emits light (referring to
In an embodiment, two sets of backlights (101a, 101b) can be two types of linearly-polarized backlights, e.g. the backlight 101a is a vertically-polarized backlight while the backlight 101b is a horizontally-polarized backlight. Or, two sets of backlights (101a, 101b) can be two types of linearly-polarized backlights, which are equipped with two mutually orthogonal polarizations.
In an alternate embodiment, two sets of backlights (101a, 101b) can be two types of circularly-polarized backlights, e.g. the backlight 101a is a clockwise-polarized backlight while the backlight 101b is a counter-clockwise-polarized backlight.
Referring to
In an embodiment, the two polarizing lenses (104a, 104b) can be two different types of linearly-polarized polarizing lenses. e.g. the polarizing lens 104a is a vertically-polarized polarizing lens while the polarizing lens 104b is a horizontally-polarized polarizing lens.
In an alternate embodiment, the two polarizing lenses (104a, 104b) can be two different types of circularly-polarized polarizing lenses, e.g. the polarizing lens 104a is a clockwise-polarized polarizing lens while the polarizing lens 104b is a counter-clockwise-polarized polarizing lens.
In this embodiment, the light sources (102a, 102a) can be cold-cathode fluorescent lamps or LED light bars, etc. As illustrated in
A synchronization module 112 is electrically connected with the display panel 103 and light sources (102a, 102b) for controlling the switching time of the light sources (102a, 102b) such that the two light sources (102a, 102b) can be respectively synchronized with the left-eye visible images and right-eye visible images, which are generated by the display panel 103, such that the viewer's left and right eyes can see the correct sequence of images.
In this embodiment, two prism sheets and two diffuser sheets are located between the display panel 103 and the backlight module. The two diffuser sheets (106, 108) are used to distribute the light uniformly and the two prism sheets (107a, 107b) are used to adjust the directions of the light beams. The choice of optical sheets between the display panel 103 and backlight module is not limited to the components illustrated in
Referring to
Referring to
Referring to
In
Because the polarizing lenses (204a, 204b) are two different types of polarized polarizing lenses, thereby generating two different types of polarized backlights for the display panel 206.
In an embodiment, the two polarizing lenses (204a, 204b) can be two different types of linearly-polarized polarizing lenses. e.g. the polarizing lens 204a is a vertically-polarized polarizing lens while the polarizing lens 204b is a horizontally-polarized polarizing lens.
In an alternate embodiment, the two polarizing lenses (204a, 204b) can be two different types of circularly-polarized polarizing lenses, e.g. the polarizing lens 204a is a clockwise-polarized polarizing lens while the polarizing lens 204b is a counter-clockwise-polarized polarizing lens.
A synchronization module 212 is electrically connected with the display panel 206 and two switch shutters (202a, 202b) for controlling the switching time of the single light source 201 such that the two different types of polarized backlights can be respectively synchronized with the left-eye visible images and right-eye visible images, which are generated by the display panel 206, such that the viewer's left and right eyes can see the correct sequence of images.
Referring to
According to the above-discussed embodiments, the stereoscopic display device disclosed herein utilizes two different types of polarized backlights to alternately illuminates the display panel for alternately generates left-eye visible images and right-eye visible images, thereby combining to form stereoscopic visible images. Besides, the display panel generates left-eye visible images and right-eye visible images with full resolutions, rather than conventional left-eye visible images and right-eye visible images with half resolutions, thereby not sacrificing the resolution of the image.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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99122382 | Jul 2010 | TW | national |