This application claims the benefit of Taiwan application No. 100129704, filed on Aug. 19, 2011.
1. Technical Field
The present disclosure relates to an optical touch system. More particularly, the present disclosure relates to an optical touch system that adopts a method of adjustable positioning to determine a touch location and positioning method thereof.
2. Description of the Related Art
Types of common touch screens include resistive type, capacitive type, acoustic-wave type, and optical type. A resistive touch screen comprises of an ITO (Indium-Tin-Oxide) film and a sheet of ITO glass, which are spaced from each other by a plurality of insulation spacers. When a touching object (such as a stylus) touches and depresses the ITO film, a local depression is formed, which makes contact with the ITO glass located therebelow thereby inducing a variation of voltage, which, after conversion from analog signal to digital signal, is applied to a microprocessor to be processed for calculation and determination of operation position of the touched point. Capacitive touch screens, on the other hand, determine position coordinates of a touch point based on the capacitance change generated by electrostatic bond between the arranged transparent electrodes and the human body. Acoustic-wave touch screens transform electrical signals into ultrasonic waves in advance and then directly transmit to the surface of the touch screen, and when a user touches the screen, the ultrasonic waves are absorbed, which first leads to attenuation and subsequently leads to determination of accurate touch location based on the attenuation amount of the ultrasonic waves before and after touching.
Resistive touch screens and capacitive touch screens are always mainstreams of the market. However, with the requirement of larger size touch screens growing fast, and with accumulating cost pressure on the manufacturers, optical touch technologies are gradually emerging. Common optical touch screens can be roughly classified into the following types: infrared type, CMOS/CCD type, embedded type, and projective type touch screens. Typically, optical touch technologies generate a shadow by shading effect and then sense the shadow change by a photosensitive component (such as an image sensor) so as to determine the touch location. The image sensor, developed on the basis of photoelectric technology, transforms an optical image into one-dimensional time sequence signals. Typical example of Vacuum-tube image sensors include electron-beam camera tubes, image intensifiers and image converters, and examples of semiconductor integrated image sensors are charge coupled devices (CCD) and complementary metal-oxide semiconductor field effect transistors (CMOS) and scanning-type image sensors. The vacuum-tube image sensors such as electron-beam camera tubes are gradually being replaced by semiconductor integrated image sensors such as CCD and CMOS.
Traditional optical touch screens have a common defect, which is that the quantity of sensors used in the screens are increased or reduced based on size of the touch screen so that it can be applicable to different sensing scopes. Moreover, existing touch screens are mainly manufactured on customized product basis, which is an overburden for the manufacturers. Therefore, the exists a need for an optical touch system that adopts a method of adjustable positioning to determine the touch location only by adjusting locations of the sensors so as to be applicable to touch screens of different specifications.
An object of the present disclosure is to provide an optical touch system and positioning method thereof.
An optical touch system in the present disclosure comprises an area to be sensed and a sensing unit; the sensing unit comprises at least two image sensors; wherein locations of the image sensors are adjustable and intersect with each other forming an intersection zone, further wherein the intersection zone covers the area to be sensed.
A positioning method for an optical touch system in the present disclosure comprises of: simultaneously driving at least two image sensors to capture image information of an area to be sensed; comprehensively analyzing image information to judge whether there are supersaturated responding patches; calculating location information of the supersaturated responding patches corresponding to the area to be sensed; and calculating touch location information of the area to be sensed.
An optical touch system and positioning method thereof in the present disclosure is based on stereo vision theory. The positioning method comprises adopting at least two adjustable image sensors to capture image information so that it can be applicable to different sizes of touch screens by adjusting locations of the image sensors. Further, sensing area of the touch system covers the whole screen without any need to increase quantity of sensors. Meanwhile, the positioning method, provided in the present disclosure, can make a spectra, emitted by a stylus, correspond to the image sensors so as to reduce touch response time and improve accuracy of touch location detection.
In order to further clarify technical solutions of the present disclosure, detailed explanation for the present disclosure will be made along with drawings as follows.
In an embodiment, the optical touch system of the present disclosure is based on stereo vision theory. One reason why people have stereo vision is that visual angles of left and light eyes are quite different from each other and an object seen by the left eye is inclined towards the left side and an object seen by the right eye is inclined towards the right side, and the two images, as seen by respective eyes, are transmitted to human brain via an optic nerve. Finally, the two images are integrated into a single stereo image by the brain. The present disclosure combines photography principle with stereo vision theory and adopts two image sensors that are equivalent to people's left and right eyes to achieve an accurate positioning of the touch point.
The main principle of Photography is to record data of a three-dimensional space on a medium of two-dimensional space. For traditional camera, the medium is a negative film and for digital camera, the medium is each and every pixel on a CMOS sensor. When recording information of the three-dimensional space on a medium of two-dimensional space, there is a certain geometrical relationship. Referring to
Referring to
In an embodiment, if two cameras that are located at the same datum line, having a distance of L between them, are used to record information of point P simultaneously, as shown in
Therefore, according to formula (3) in the present embodiment, it can be seen that if coordinate information of Pil and Pir is known, zc can be calculated quickly according to the formula (3). Similarly, xc and yc can be calculated according to the following two formulas, and thereby accurate location coordinates (xc, yc, zc) of point P can be calculated:
The above theoretical basis is called as stereo vision theory or bi-nocular vision theory.
Referring to
Referring to
Referring to
Referring to
The optical touch system also comprises a stylus 40, wherein spectra emitted by the stylus 40, corresponding to the image sensors, reduces touch response time and improves accuracy of detection of touch location. For instance, if CMOS sensors are adopted as the image sensors, an IR light source can be set inside a stylus 40. Since CMOS sensors have different responses to the spectra of different wavelengths, especially having a highly sensitive response to IR spectra, when the CMOS sensors capture image information of a touch location, pixels of the corresponding areas on the CMOS sensors are stimulated by IR light and present a state of supersaturated response, which helps in obtaining information of the touch location.
Referring to
Referring to
Although the present invention has been described with reference to the embodiments thereof and best modes for carrying out the present invention, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention, which is intended to be defined by the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 100129704 | Aug 2011 | TW | national |