1. Field of Invention
The present invention relates to a detection module and an optical detection system comprising the same.
2. Description of Related Art
Nowadays, optical detection systems are sometimes employed as an input means of computing devices. Conventionally, a number of image and/or optical detectors are arranged around the peripheral of a detection area such as a display screen.
For example, a coordinate input device disclosed in U.S. Pat. No. 7,414,617 includes a pair of cameras positioned in an upper left position and an upper right position of a display screen of the monitor and views both a side face of an object in contact with a position on the display screen and a pre-determined desk-top coordinate detection area to capture the image of the object with the field of view. The touch location of the object on the display screen is calculated based on video signals output from the pair of cameras.
U.S. Pat. No. 7,538,759 provide a touch screen system, in which several first light sources are disposed along one edge of a display screen and three reflectors are respectively attached to the remaining three edges of the display screen. Two detectors can detect variations of the reflected light when an object, e.g. a finger or a stylus, touches the display screen. A similar approach is provided in Taiwan Patent No. 496,965, in which an optical detection device equipped with a complicated light-emitting unit, an image detection unit arranged along one edge of a display screen and three reflectors respectively attached to the remaining three edges of the display screen is disclosed.
In the above-identified examples, four edges of the display screen are either occupied by cameras, optical detectors, optical lens or reflectors. In other words, the structure of the optical detection device suggested in the prior art is complicated, and therefore is more expensive to manufacture or maintain. Hence, there exist in this art an improved optical detection device that is easy to use and more economically to implement as part of a computer input system.
The following presents a simplified summary of the disclosure in order to provide a basic understanding to the reader. This summary is not an extensive overview of the disclosure and it does not identify key/critical elements of the present invention or delineate the scope of the present invention. Its sole purpose is to present some concepts disclosed herein in a simplified form as a prelude to the more detailed description that is presented later.
In view of the foregoing, in one aspect, the present invention is directed to a module for use in an optical detection system, which can be used to detect an object within a detection area. Comparing with conventional optical detection systems, the module provided herein is simple in structure and may still detect the object effectively.
According to one embodiment of the present invention, the module for use in an optical detection system may comprise a first light-generating unit and a detection unit. The first light-generating unit includes a first light source and a first light-converting lens. The first light source may emit a first collimated light beam. The first light-converting lens is configured to convert the first collimated light beam into a first sheet of light entering into a detection area. When an object is located within the detection area, the object may intercept and reflect part of the first sheet of light thus producing a first reflected light. The detection unit includes a detector and a guiding lens. The guiding lens is configured to receive and guide the first reflected light, whereas the detector is configured to receive the first reflected light passing through the guiding lens, thereby forming an image of the object on the detector.
In alternative embodiments, the module further comprises at least one second light-generating unit. The second light-generating unit includes a second light source and a second light-converting lens. The second light source may emit a second collimated light beam. The second light-converting lens is configured to convert the second collimated light beam into a second sheet of light entering into the detection area. In this case, when an object is located within the detection area, the object may intercept and reflect part of the first sheet of light and part of the second sheet of light thus producing a first reflected light and a second reflected light, respectively. The guiding lens is configured to receive and guide the first and second reflected lights, whereas the detector is configured to receive the first and second reflected lights passing through the guiding lens, thereby forming an image of the object on the detector. In such optional embodiments, two or more light-generating units are employed in the module which may further increase the intensity of the reflected lights detected by the detecting unit. As such, the accuracy of the detection may be improved.
Each of the first and/or second light-converting lenses used in the embodiments provided herein is a line-generating lens or a cylindrical lens.
The guiding lens used in the embodiments provided herein is a convex lens or a composite lens assembly.
Each of the first and/or the second light sources used in the embodiments provide herein comprises an infrared laser diode and a collimating lens. When the first and/or second light source comprise the infrared laser diode, the detection unit may optionally further comprise an infrared long pass filter for filtering out the visible light.
The detector used in the embodiments provided herein may be a linear sensor. For example, the linear sensor may be a linear complementary metal oxide semiconductor (linear CMOS) sensor, a linear charge coupled device (linear CCD) or a position-sensing detector.
In another aspect, the present invention is directed to an optical detection system which employs the module provided in the above-described aspect. The optical detection system may be used to detect the touch location of an object within a detection area. Comparing with conventional optical detection systems, the optical detection system provided herein has simple structure and may still detect the touch location of the object effectively.
According to one embodiment of the present invention, the optical detection system includes two modules disclosed herein and a processing unit in communication with the two modules. Each of the two modules is oriented toward the detection area and spaced from each other by a distance. The processing unit is operable to determine the touch location of the object within the detection area by triangulation based on the distance between the two modules and two included angles each formed between the object and the respective module.
In alternative embodiments, the two modules used in the optical detection system may further comprise at least one second light-generating unit, respectively. The second light-generating unit includes a second light source and a second light-converting lens. The second light source may emit a second collimated light beam. The second light-converting lens is configured to convert the second collimated light beam into a second sheet of light entering into a detection area. In this case, when an object is located within the detection area, the object may intercept and reflect part of the first sheet of light and part of the second sheet of light thus producing a first reflected light and a second reflected light. The guiding lens is configured to receive and guide the first and second reflected lights, whereas the detector is configured to receive the first and second reflected lights passing through the guiding lens thereby forming an image of the object on the detector. In such optional embodiments, two or more light-generating units are employed in the module which may further increase the intensity of the reflected lights detected by the detecting unit. As such, the accuracy of the detection may be improved. Preferably, such optical detection system may be used in applications where larger detection area is desired.
The optical detection module/system according to the embodiments provided herein may be integrated into or removably installed in adjacent to the peripheral of a display screen in such a way that the detection area is within the display area of a display screen. For example, in an optional arrangement, the module/system provided herein may be integrated into or removably installed on one edge of the display screen.
Each of the first and/or the second light sources used the embodiments provided herein comprises an infrared laser diode and a collimating lens. When the first and/or second light source comprise an infrared laser diode, the detection unit may optionally further comprise an infrared long pass filter for is filtering out the visible light.
According to the principles and spirits of the present invention, each optical detection system should comprise two modules. The number of the light-generating unit employed in each module may depend on the desired size of the detection area. Generally, the detection area is located on a display face of a display screen. In one example, the optical detection system may have two modules each employing only one light-generating unit and such system is suitable to be used with a display screen having a diagonal measurement of less than 30 inches. In another example, each of the two modules of the optical detection system may employ at least two light-generating units, and such system is suitable to be used with a display screen having a diagonal measurement of at least 30 inches.
Many of the attendant features will be more readily appreciated as the same becomes better understood by reference to the following detailed description considered in connection with the accompanying drawings.
The present description will be better understood from the following detailed description read in light of the accompanying drawings, wherein:
Wherever possible, like reference numerals are used to designate like parts in the accompanying drawings.
The detailed description provided below in connection with the appended drawings is intended as a description of the present examples and is not intended to represent the only forms in which the present example may be constructed or utilized. The description sets forth the functions of the example and the sequence of steps for constructing and operating the example. However, the same or equivalent functions and sequences may be accomplished by different examples.
In one aspect, the present invention is directed to an optical detection system to be implemented on a display screen. The optical detection system can be use for determining a touch location of an object (such as the fingertip of a user or a stylus) on the screen.
According to the principles and spirits of the present invention, the module provided herein can be used in an optical detection system for determining the touch location of an object on the display screen. Each module includes a first light-generating unit and a detection unit. Generally, when the object touches the detection area, such as a detection area within the display face of a display screen, two modules are required to determine the coordinate of the object. In addition to the modules, a processing unit is required to process the coordinate data and determine the touch location of the object on the detection area.
Reference is made to
As illustrated in
In the embodiments of the present invention, each of the first light-generating unit comprises a first light source (102a or 102b) and a first light-converting lens (104a or 104b), respectively.
Each of the first light sources 102a, 102b is operable to emit a first collimated light beam having high directionality. For example, a suitable first light source may comprise a laser light source such as an infrared laser diode capable of emitting laser light having a wavelength of about 780, 808 or 850 nm. Generally, the laser beam emitted by a laser diode has a large divergence angle. As such, a collimating lens is required to convert the laser beam into collimated light beam. Accordingly, the first light source (102a dr 102b) may further comprise a collimating lens in addition to the laser light source.
Each of the first light-converting lenses 104a and 104b is disposed on the optical path of the respective first light source 102a and 102b. For example, the light converting lens can be disposed in front of the light source. Besides, the first light-converting lens and the first light source may work collaboratively to convert the first collimated light beam into a first sheet of light entering into the detection area 202. Any lens capable of converting a collimated light beam into a sheet of light can be used as the first light-converting lens (104a or 104b). By way of example, rather than limitation, the first light-converting lens (104a or 104b) can be a line-generating lens such as a cylindrical lens.
Optionally, the line-generating lens can rotate or swivel rapidly so that the first sheet of light may scan across the detection area as thoroughly as possible.
In optional embodiments, each of the modules 100a, 100b may further comprise a light shield (110a or 110b). For example, the light shield 110a is operable to prevent the light emitted by the first light source 102a from entering into the detection unit 105b of module 100b, whereas the light shield 110b is operable to prevent the light emitted by the first light source 102b from entering into the detection unit 105a of the module 100a. Generally, the above-mentioned purpose can be achieved by properly configure the light shield of one module relative to the light-generating module of the other module.
Generally, the elevation of the plane of the sheet of light emitted by the first light-generating unit is slightly above and substantially parallel to the surface of the detection area 202. According to the principles and spirits of the present invention, the detection area 202 may be directed to a display face of a display screen. Hence, when an object (such as a finger) contacts the surface of the detection area 202 (such as the display face of a display screen), the object may intercept and reflect part of the first sheet of light to generate a first reflected light, as shown in
Reference is again made to
Each of the guiding lenses 106a and 106b is configured to receive and guide the first reflected light to the respective detectors 108a and 108b. Generally, the guiding lens (106a, 106b) can be disposed on the optical path of the detector (108a, 108b). For example, the guiding lens (106a, 106b) can be disposed in front of the optical path of the detector (108a, 108b). As such, each of the detectors 108a and 108b is operable to receive the first reflected light guided by the respective guiding lens (106a, 106b) thereby forming an image of the object on the respective detector (108a, 108b), respectively.
Optical lens capable of guiding the reflected light to the detector, thereby forming an image of the object on the detector can be used as the guiding lens (106a, 106b), examples of which include but are not limited to, a single convex lens and a composite lens assembly. The composite lens assembly may comprise multiple lenses arranged in a row or an array. For example, the composite lens assembly may comprise multiple convex lenses arranged in a row or in an array; alternatively, the composite lens assembly may comprise at least one convex lens and at least one concave lens arranged in a row or in an array, as long as the composite lens assembly is capable of directing the reflected light so that the light forms the image of the object on a detector. In the embodiment illustrated in
Generally, devices capable of detecting one-dimensional position signal can be used as the detector described herein, examples of which include but are not limited to a linear complementary metal oxide semiconductor (linear CMOS) sensor, a linear charge coupled device (linear CCD) and an optical position-sensing detector.
Optionally, each detection unit may further comprise an infrared long pass filter for filtering out the visible light so that the visible light would not enter the detector (108a, 108b). Specifically, the infrared long pass filter may permit the infrared having a wavelength of at least 750 nm passing therethrough while filtering out the visible light having a wavelength of less than 750 nm.
For example, in one embodiment, each of the light sources 102a and 102b may comprise an 850 nm infrared laser diode and a collimating lens, and the detection unit may further comprise an infrared long pass filter. In this way, it is less likely that the detectors 108a and 108b are subjected to the interference caused by surrounding visible light thereby improving the detection efficacy of the optical detection system.
The infrared long pass filter may be optionally coated as a film on a light-incident side (the side facing the guiding lens) of a detector (108a, 108b); however, the present invention is not limited thereto. Alternatively, the infrared long pass filter may be in the form of a film and disposed on the light-incident side (the side facing the detection area) or the light-emitting side (the side facing the detector) of the guiding lens. Alternatively, the infrared long pass filter may be in a form of a separate device (such as an optical filter) and disposed in front of the light-incident side of the guiding lens or between the guiding lens and the detector.
Please refer to
In the present embodiment, the optical detection system may further comprise a processing unit (not shown in
For example, when the processing unit is disposed separately from the two modules, the processing unit may employ wireless communication techniques such as infrared, bluetooth, etc. to establish a communication connection with the modules; alternatively, the processing unit may connect to the modules through a parallel port, a universal serial bus (USB) or wired communication techniques. When the processing unit and the two modules are integrated in a single device, the two modules may connect to the processing unit through a parallel port, a universal serial bus (USB) or other suitable connecting means.
Reference is made to
In the present disclosure, the center of each of the guiding lens 106a and 106b is used as a reference point (115a or 115b). In operation, since the two modules of the optical detection unit have been disposed at a known position, the distance S (the length of line 125) between the two reference points can be ascertained.
As illustrated in
According to
Moreover, the images 300′a and 300′b formed on the detectors 108a and 108b. The image (300′a, 300′b) formed on detector (108a, 108b) may be formed at a position away from the intersection point of the detector (108a, 108b) and the axis (130a, 130b) by a distance (ΔL1, ΔL2). The distance (ΔL1, ΔL2) may vary depending on the touch location of the object 300 in the detection area. The processing unit may ascertain the distance (ΔL1, ΔL2) based on the position of the image (300′a, 300′b) formed on the detector. As shown in
Further, an included angle (Δθ1, Δθ2) is formed between the reflected light (120a, 120b) and the axis (130a, 130b), an included angle α is formed between the two reflected lights 120a and 120b, and an included angle (β1, β2) is formed between the reflected light (120a, 120b) and the line 125. Said included angles Δθ1, Δθ2, α, β1, and β2 also vary depending on the touch location of the object 300 in the detection area. The processing unit may calculate Δθ1 and/or Δθ2 from equation 1:
Δθn=arctan(ΔLn/F) Equation 1.
Then, the processing unit may calculate β1 and/or β2 from equation 2:
βn=θn−Δθn Equation 2.
Afterwards, the processing unit may determine the coordinate (touch location) of the object 300 in the detection area based on β1, β2 and S.
The processing unit described hereon may be implanted as hardware, software, firmware, or a combination thereof that is capable of performing the aforementioned calculation processes. For example, the calculation can be effected by the implementation of a center processing unit (CPU) built in a computer in conjunction with a suitable software so as to determine the touch location of the object within the detection area.
According to the principles and spirits of the present invention, the optical detection system/module disclosed herein may be used for detecting a touch location of an object within a detection area. Generally, the detection area may be located on a display face of a display screen thereby converting the ordinary display screen into a screen with a touch-input functionality. Preferably, the detection area should cover the whole display range of the display screen as much as possible. The display screen described herein is not limited to the display of personal computers (PCs), laptops, tablet PCs; rather, examples of the display screen also includes, but are not limited to, TV screens (such as CRT TV screens, LC TV screens, and Plasma TV screens) and projection screens. Besides, the detection area can also be applied to other articles thereby converting the articles into devices with a touch-input functionality. For example, when an article is configured to have at least one region designated/associated with a specific function or command, the article, used in conjunction with an optical detection system provided herein, may turns into a device capable of inputting the command or initiating the function.
According to embodiments of the present invention, the optical detection system/module may be integrated into or removably installed in adjacent to the peripheral of a display screen such that the detection area of each of the module is within the display area of a display screen. In the present disclosure, the term “the peripheral of a display screen” is referred to a position directly contacts or is in the proximity of (but not necessarily contacting) the edge(s) of the display screen. For example, the module may be integrated into or removably installed on at least one edge of the display screen. Preferably, the two modules may be respectively disposed at each of the two ends of one edge of the display screen such that the detection area may cover the whole display range of the display screen as much as possible.
In this example, the optical detection system 400 comprises two modules (not shown in
As illustrated in
The optical detection system 400 may further comprise a connecting wire 404. A connector 404a, such as a USB adapter, is disposed at one end of the connecting wire 404. The connector 404a can be fitted into the corresponding slot disposed on the laptop 410. The other end of the connecting wire 404 is electrically coupled to the elements (such as those illustrated in
Although the connecting wire 404 described hereinabove may be used to transfer both the power and signal, the present invention is not limited thereto. For example, the optical detection system 400 may have an additional power line (not shown in
The optical detection system 500 is similar to the optical detection system 400 described hereinabove. Accordingly, for the sake of brevity, a description of the structure of the optical detection system 500 is not repeated herein.
As illustrated in
According to the present example, as illustrated in
According to the principles and spirits of the present invention, there in no particular limitation as to the dimension of the detection area of the optical detection system provided herein. Specifically, the dimension of the detection area may be adjusted by properly arranging the disposal angles and positions of the two modules.
In theory, when it is desired to applied the optical detection system provided herein to a larger display screen, the detection efficacy can be maintained by increasing the light intensity of the first light source. However, the light intensity of the light source is subjected to specific regulation due to safety concerns. Implementations and simulations show that the optical detection system/module described hereinabove may effectively detect the touch location of the object within the detection area (display screen) when the detection area has a diagonal measurement of less than 30 inches. In contrast, the detection system/module described hereinabove may be less effective in detecting the touch location of the object within the detection area (display screen) when the detection area has a diagonal measurement of greater than 30 inches. In the latter scenario, the uniformity or intensity of the signal of the reflected light may be less than that of the former scenario.
In view of the foregoing, embodiments of the present invention provide an optical detection system/module with a larger detection area. Such optical detection system/module is suitable to be applied to a display screen with a larger display area.
In such embodiments, each module may further comprise a first light-generating unit, at least one second light-generating unit, and a detection unit. The first light-generating unit and the detection unit are similar to the first light-generating unit (101a, 101b) and the detection unit (105a, 105b) described hereinabove in connection with
In the present embodiments, each second light-generating unit comprises a second light source and a second light-converting lens. The second light source is operable to emit a second collimated light beam having high directionality. Examples of the suitable second light source are similar to those described regarding the first light source.
The second light-converting lens is disposed on the optical path of the second light source such as in front of the second light source. The second light-converting lens and the second light source may work collaboratively to convert the second collimated light beam into a first sheet of light entering into the detection area 202. Examples of the suitable second light-converting lens are similar to those described regarding the first light-converting lens.
In the present embodiments, the first and second light-generating units and the detection unit should be properly deployed such that the guiding lens of the detection unit is operable to receive the first reflected light and the second reflected light, and guide the first and second reflected lights to the detector thereby forming an image of the object on the detector.
The first light-generating unit and the second light-generating unit are spaced from each other by a distance. However, there is no particular limitation as to the relative disposition or distance between the first and second light-generating units as long as the first and second light-generating units of each module are operable to emit sheet of lights toward the detection area, respectively. For example, the first and the second light-generating units may be substantially oriented in the same direction; alternatively, the first and the second light-generating units may be oriented in different directions (such as, for example, one facing leftward while the other facing rightward; or one facing right downward while the other facing right upward.
The module according to the present embodiments comprises multiple light-generating units; as such, it is possible to improve the sensitivity and accuracy of the optical detection system applied to a larger detection area. Specifically, increasing the number of the light-generating unit may increase the light intensity of the sheet of light entering the larger detection area as comparing with a single light-generating unit. Moreover, the uniformity of the sheet of light across the extent of the detection area may be improved accordingly. In this way, the intensity of the reflected light generating by the object being irradiated by the sheet of light would also increase. Altogether, the sensitivity and accuracy of the detection will be improved. According to the principles and spirits of the present invention, the number of the light-generating unit may be determined depending on the dimension of the detection area. Generally, the larger the dimension of the detection area is, the more the number of the light-generating unit. For example, in some cases, three or more light-generating units may be required to provide an optical detection system with desired detection sensibility and accuracy.
Similarly, the optical detection system/module of the present embodiments may be integrated into or removably installed in adjacent to the peripheral of a display screen such that the detection area of each of the module is within the display area of a display screen. For example, the module may be integrated into or removably installed on at least one edge of the display screen.
The principle and method employed by the optical detection system/module of the present embodiments for calculating/determining the touch location of an object within a detection area are similar to those described hereinabove in connection with
Please refer to
In the present example, the optical detection system may comprise a processing unit (not shown in
As shown in
Although the optical detection system/module illustrated in
Please refer to
According to the present embodiment, the optical detection system comprises a processing unit (not shown in
As shown in
Although the optical detection system/module illustrated in
It is appreciated from the foregoing disclosure that an optical detection module and an optical detection system comprising the same are provided herein. The optical detection module/system is used for detection and determining a touch location of an object touching a detection area. As compared to conventional optical detection systems, the optical detection module/system provided herein is less complicated in structure. Besides, it is more easy and cost-effective to employ the optical detection system to turn an article (such as a display screen) into an input device.
It will be understood that the above description of embodiments is given by way of example only and that various modifications may be made by those with ordinary skill in the art. The above specification, examples and data provide a complete description of the structure and use of exemplary embodiments of the invention. Although various embodiments of the invention have been described above with a certain degree of particularity, or with reference to one or more individual embodiments, those with ordinary skill in the art could make numerous alterations to the disclosed embodiments without departing from the spirit or scope of this invention.
Number | Date | Country | Kind |
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99102473 | Jan 2010 | TW | national |
The present application is a continuation-in-part application of U.S. application Ser. No. 12/371,228, filed Feb. 13, 2009 and claims priority to Taiwanese Application Serial Number 99102473, filed Jan. 28, 2010. The entire disclosures of all the above applications are hereby incorporated by reference herein.
Number | Date | Country | |
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Parent | 12371228 | Feb 2009 | US |
Child | 12712206 | US |