1. Technical Field
The present disclosure relates to wireless communication devices and, particularly, to a wireless communication device with dual imaging units.
2. Description of Related Art
Many wireless communication devices, which can capture three-dimension images have at least two imaging units. The two imaging units are used for capturing two images of an object from different views, and thus an image processor can produce a three-dimension image using the two images. However, the two imaging units are generally positioned on a rear of the wireless communication device and cannot be used to capture an image of the user who holds the wireless communication device in a video call. Thus, the mobile phone must employ an additional imaging unit in a front of the wireless communication device to capture the image of the user. Therefore, with the addition of the second imaging device, the mobile phone becomes expensive.
Therefore, it is desirable to provide a wireless communication device that can overcome the above-mentioned limitations.
Many aspects of the embodiments should be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
The main body 10a includes a shell 1011, a keyboard 1012, a display screen 1010, and a central processing unit (CPU) 1014. The shell 1011 includes a first surface 101 and a second surface 102 opposite to the first surface 101. In this embodiment, the first surface 101 faces a user when the mobile phone 100 is used. The keyboard 1012 and the displaying screen 1010 are positioned on the first surface 101. In other embodiments, the keyboard 1012 can be omitted.
The CPU 1014 is received in the shell 1011 and is electrically connected to the keyboard 1012 and the displaying screen 1010. The CPU 1014 controls the keyboard 1012 and the display screen 1010.
The shell 1011 defines a first opening 10, a second opening 20, and a third opening 30 for allowing light rays to pass respectively. In this embodiment, the first opening 10 is positioned on an upper-left corner of the first surface 101, the second opening 20 is positioned on an upper-right corner of the second surface 102, and the third opening 30 is positioned on an upper-left corner of the second surface 102. In this embodiment, the second opening 20 is coaxial with the first opening 10, and shares a horizontal line with the third opening 30. The positions of the first opening 10, the second opening 20, and the third opening 30 are not limited to this embodiment.
The first driving module 60 drives the first imaging unit 40 to rotate, and thus allowing the first imaging unit 40 to be aligned with the first opening 10 or the second opening 20 alternatively. The first driving module 60 includes a rotating shaft 601 and a motor 602. The rotating shaft 601 is connected to the first imaging unit 40. A center axis of the rotating shaft 601 is perpendicular to an optical axial of the first imaging unit 40. The motor 602 drives the rotating shaft 601 to rotate around itself. The configuration of the first driving module 60 is not limited to this embodiment.
When the first image unit 40 faces the second opening 20, the first imaging unit 40 and the second imaging unit 50 capture two images of an object from different views.
The FPCB 70 sends two image signals corresponding to the two images to the image processor 90. And the FPCB 70 includes a first portion 71, a second portion 72, and a third portion 73. The third portion 73 is interconnected to the first portion 71 and the second portion 72. The first portion 71 is electrically connected to the first imaging unit 40. The second portion 72 is electrically connected to the second imaging unit 50. The third portion 73 is electrically connected to the image processor 90.
The image processor 90 processes the two image signals from the FPCB 70, and thus producing a three-dimension image signal. The image processor 90 is further electrically connected to the CPU 1014. The CPU 1014 controls the displaying screen 1010 to display a three-dimension image corresponding to the three-dimension image signal.
In use, when a user wants to capture a three-dimension image, the first driving module 60 drives the first imaging unit 40 to face the second opening 20, and thus the first imaging unit 40 and the second imaging unit 50 capture the two images of the object. The FPCB 70 sends two image signals corresponding to the two images to the image processor 90. The image processor 90 processes the two image signals to produce the three-dimension image. When the user wants to have a video call with others, the first driving module 60 drives the first imaging unit 40 to face the first opening 10, and thus the first imaging unit 40 can capture an image of the user, and at the same time, the second imaging unit 50 still captures an image of outside scenes surrounding the user, or the second imaging unit 50 can be controlled by the CPU 1014 to stop working.
For the first imaging unit 40 being rotated conveniently, the length of the first portion 71 is longer than that of the length of the second portion 72.
The main difference between the mobile phone 200 and the first mobile phone 100 is that the shell 2011 further has a fourth opening 212 on an upper-right corner of the first surface 201, and the mobile phone 200 further has a second driving module 280 for driving the second imaging unit 250 to rotate. The fourth opening 212 shares a same horizontal line with the first opening 210, and is coaxial with the third opening 230. The second imaging unit 250 can be driven by the second driving module 280 to be aligned with the third opening 230 or the fourth opening 212 alternatively. The position of the fourth opening 212 is not limited to this embodiment. In this embodiment, the configuration of the second driving module 280 is substantially the same as that of the first driving module 260. The configuration of the second driving module 280 is not limited to this embodiment.
When the first imaging unit 240 faces the first opening 210, and the second imaging unit 250 faces the fourth opening 212, the first imaging unit 240 and the second imaging unit 250 can capture two images of a first object on the side of the user, and thus the image processor 290 can obtain a first three-dimension image of the first object. When the first imaging unit 240 faces the second opening 220, and the second imaging unit 250 faces the third opening 230, the first imaging unit 240 and the second imaging unit 250 can capture two images of a second object on a side opposite to the user, and thus the image processor 290 can obtain a second three-dimension image of the second object.
The mobile phone uses only two camera modules to capture three-dimension image and also can capture an image of the user in a video call. This reduces cost of the mobile phone.
It will be understood that the above particular embodiments are shown and described by way of illustration only. The principles and the features of the present disclosure may be employed in various and numerous embodiments thereof without departing from the scope of the disclosure as claimed. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.
| Number | Date | Country | Kind |
|---|---|---|---|
| 100128333 | Aug 2011 | TW | national |