The present invention generally relates to a structured-light scanning system and method, and more particularly to a structured-light scanning system and method with an optical alignment device.
Structured-light scanning is the process of projecting a pattern of light onto a scene. The deformation of the pattern is captured by a camera, and then processed, for example, by triangulation, to reconstruct a three-dimensional or depth map of the objects in the scene. The structured-light scanning may, for example, be adapted to object detection for detecting objects of a certain class in digital images and videos. Specifically, the structured-light scanning may be adapted to face detection, which is a specific case of object detection, in mobile devices such as cellphones for detecting frontal human faces.
However, when the structured-light scanning is performed in the outdoors or in a long-range operation, interference caused by ambient light may greatly degrade image quality, for example, in term of signal-to-noise ratio.
A need has thus arisen to propose a novel scheme to prevent the ambient light from affecting the structured-light scanning, particularly when carried out in the outdoors or in a long-range operation.
In view of the foregoing, it is an object of the embodiment of the present invention to provide a structured-light scanning system and method capable of being immune to interference from ambient light particularly when the structured-light scanning system is disposed or performed outdoors or in a long-range operation.
According to one embodiment, a structured-light scanning system includes a plurality of switchable projectors, an optical alignment device and an image sensor. The switchable projectors respectively generate emitted lights with a predetermined pattern, each switchable projector being capable of switchably generating either a two-dimensional (2D) emitted light or a three-dimensional (3D) emitted light. The optical alignment device aligns the emitted lights to generate an aligned light, which is projected onto and reflected from a surface of an object, resulting in a reflected light. The image sensor detects the reflected light.
In the embodiment, the structured-light scanning system 100 may include a plurality of switchable projectors 11 configured to respectively generate emitted lights 111 with a predetermined pattern. Each switchable projector 11 is capable of switchably generating either a two-dimensional (2D) emitted light or a three-dimensional (3D) emitted light.
According to one aspect of the embodiment, the structured-light scanning system 100 may include an optical alignment device 12 configured to align the first emitted light 111A (from the first light source 11A) and the second emitted light 111B (from the second light source 11B), thereby generating an aligned light 121.
According to another aspect of the embodiment, the optical alignment device 12 may be composed of two triangular prisms which are joined (e.g., by glue) at an interface with a first surface 3 facing the first light source 11A and a second surface 4 facing the second light source 11B. Specifically, the first emitted light 111A incident on the first surface 3 may pass through the interface, and the second emitted light 111B incident on the second surface 4 may be reflected from the interface. Accordingly, the first emitted light 111A passing through the interface and the second emitted light 111B reflected from the interface are thus aligned and combinably outputted as the aligned light 121.
Referring back to
The structured-light scanning system 100 of the embodiment may include a driver 14 configured to drive the switchable projectors 11 to timely generate the aligned light 121, and to control the image sensor 13 such that the image sensor 13 can work in coordination with the switchable projectors 11.
According to the embodiment as described above, as the first light source 11A and the second light source 11B are embedded at the same place, a distance (or baseline) between the image sensor 13 and the switchable projectors 11 may be maintained constant. Moreover, as exemplified in
Although specific embodiments have been illustrated and described, it will be appreciated by those skilled in the art that various modifications may be made without departing from the scope of the present invention, which is intended to be limited solely by the appended claims.
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Number | Date | Country |
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WO-2009037662 | Mar 2009 | WO |
WO-2019160032 | Aug 2019 | WO |