The present invention relates to an optical film and a user input system, particularly to an optical film and a user input system, which enables a user to use an optical reader device to input information.
There is a user input system, wherein a coding pattern containing addressing information is formed on a substrate, and the user uses an appropriate reader device to read the addressing information of the coding pattern, whereby the track of the reader device moving on the surface of the substrate is recorded. Generally, the reader device is in form of a pen-like structure, whereby the user can interact with an electronic device in a familiar writing way. In the field, how to acquire uniform and easy-to-recognize coding pattern is a very important subject for decoding the coding pattern.
The present invention provides an optical film and a user input system, wherein a scattering layer is formed on an optical film, and wherein a reflective coding pattern with a diffuse reflection effect is formed on the scattering layer, whereby an optical reader device can acquire uniform and easy-to-recognize images of the coding pattern.
In one embodiment, the optical film of the present invention comprises a substrate, a scattering layer, a coding pattern, and a coating layer. The substrate has a sensing surface and a back surface opposite to the sensing surface. The scattering layer is disposed on at least one of the sensing surface and the back surface of the substrate to scatter a sensing light. The coding pattern is disposed on the scattering layer to reflect the sensing light. The coding pattern contains coded information. The coating layer covers the scattering layer and the coding pattern.
In another embodiment, the user input system of the present invention comprises an optical film and an optical reader device. The optical film further comprises a substrate, a scattering layer, a coding pattern and a coating layer. The substrate has a sensing surface and a back surface opposite to the sensing surface. The scattering layer is disposed on at least one of the sensing surface and the back surface of the substrate to scatter a sensing light. The coding pattern is disposed on the scattering layer to reflect the sensing light. The coding pattern contains coded information. The coating layer covers the scattering layer and the coding pattern. The optical reader device has a contact end, which is used to contact the sensing surface of the optical film. The optical reader device comprises a light-emitting unit, an image sensor, a processing unit, and a communication interface. The light-emitting unit emits a sensing light to illuminate the optical film. The image sensor detects the sensing light reflected by the coding pattern and outputs a sensed image. The processing unit is electrically connected with the image sensor and analyzes the sensed image to acquire coded information of the coding pattern. The communication interface is electrically connected with the processing unit and transmits the coded information to an external electronic device.
Below, embodiments are described in detail in cooperation with the attached drawings to make easily understood the objectives, technical contents, characteristics and accomplishments of the present invention.
The present invention will be described in detail with embodiments and attached drawings below. However, these embodiments are only to exemplify the present invention but not to limit the scope of the present invention. In addition to the embodiments described in the specification, the present invention also applies to other embodiments. Further, any modification, variation, or substitution, which can be easily made by the persons skilled in that art according to the embodiment of the present invention, is to be also included within the scope of the present invention, which is based on the claims stated below. Although many special details are provided herein to make the readers more fully understand the present invention, the present invention can still be practiced under a condition that these special details are partially or completely omitted. Besides, the elements or steps, which are well known by the persons skilled in the art, are not described herein lest the present invention be limited unnecessarily. Similar or identical elements are denoted with similar or identical symbols in the drawings. It should be noted: the drawings are only to depict the present invention schematically but not to show the real dimensions or quantities of the present invention. Besides, matterless details are not necessarily depicted in the drawings to achieve conciseness of the drawings.
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The scattering layer 12 is disposed on at least one of the sensing surface 111 and the back surface 112 of the substrate 11. In the embodiment shown in
The coding pattern 13 is disposed on the scattering layer 12. As the coding pattern 13 is reflective and disposed on the scattering layer 12, the coding pattern 13 can reflect the sensing light L1 diffusely. Thereby, the optical reader device can acquire a uniform and easy-to-recognize image of the coding pattern. In one embodiment, the coding pattern 13 includes a plurality of pattern units, and each pattern unit is selected from a group including a segment, an ellipse, a polygon, and combinations of segments, circles, ellipses and polygons. It is preferred: the lengths of the long axis and the short axis of each pattern unit are different. Thereby, the orientation of each pattern unit, such as the angle of rotation, can be determined. It is easily understood: the coding pattern 13 contains coded information, which may be at least one of addressing information, text information, graphic information, control instruction information, and anti-fake information.
In one embodiment, the coding pattern 13 is made of a metal, a metal oxide, or an alloy, which can provide reflectivity for the coding pattern 13. The metal may be selected from a group including gold, aluminum, silver, and copper. The metal oxide may be selected from a group including indium tin oxide (ITO), aluminum zinc oxide (AZO), and aluminum oxide. The alloy may be a nickel-copper alloy or a nickel-titanium-copper alloy. However, the present invention does not limit that the coding pattern must be made of the abovementioned materials. In one embodiment, the coding pattern 13 is formed via alternately stacking dielectric materials respectively having different refraction indexes. It is easily understood: the other technologies able to reflect the sensing light L1 can also be used to realize the coding pattern 13 of the present invention. In one embodiment, the thickness of the coding pattern 13 ranges from 3 nm to 20 μm. It is easily understood: the density, size, spacing and material of the coding pattern 13 can be appropriately modified to make the optical film of the present invention have a high transmittance (such as a transmittance of over 70%).
In one embodiment, the coding pattern 13 adopts a 1-dimensional structure (as shown in
The coating layer 14 covers the scattering layer 12 and the coding pattern 13. The coating layer 14 can prevent the coding pattern 13 from being abraded by frequent touch of the optical reader device. In one embodiment, the coating layer 14 has at least one of the following properties: hard coating, anti-glare, anti-reflection, anti-fingerprint, hydrophobicity, and anti-electrostatic. It is easily understood: the coating layer 14 may be a multilayer structure. In one embodiment, the refractivity of the coating structure 14 is identical to or different from that of the substrate 11. In one embodiment, the substrate 11, the scattering layer 12, the coding pattern 13 and the coating layer 14 allow a visible light L2 to pass, whereby the optical film 10 of the present invention can be applied to display devices. In other words, the visible lights presented by a display device can pass the optical film 10 of the present invention.
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The light-emitting unit 201 generates a sensing light L1 to illuminate the optical film 10. In one embodiment, the light-emitting unit 201 is an infrared or ultraviolet light-emitting diode (LED), preferably an infrared LED. The image sensor 202 detects the sensing light L1 reflected by the coding pattern and outputs a sensed image. In one embodiment, the image sensor 202 includes a charge coupled device (CCD) or a complementary metal oxide semiconductor (CMOS) sensor. In one embodiment, the lens of the image sensor 202 is made of poly methyl methacrylate (PMMA). The lens is usually fabricated in an injection molding method. PMMA features scratch resistance and has a light transmittance of about 90% for a light having a spectral peak of 810 nm. The CCD or CMOS device may have a size of 128×128 pixels. It is preferred: the CCD or CMOS device has a size of 140×140 pixels, which allows fabrication to have higher fault tolerance.
The processing unit 203 is electrically connected with the image sensor 202. The processing unit 203 can analyze the sensed image to acquire the coded information in the coding pattern, such as addressing information, text information, graphic information, control instruction information, or anti-fake information. The communication interface 204 is electrically connected with the processing unit 203. The communication interface 204 transmits the addressing information, text information, graphic information, control instruction information, or anti-fake information, which is acquired by the processing unit 203, to an external electronic device 30. In the present invention, the communication interface 204 is a wired communication interface or a wireless communication interface. It is preferred: the communication interface 204 is a wireless communication interface lest the cable interfere with the writing activity of the user. In one embodiment, the wireless communication interface is based on the Bluetooth technology, the wireless local area network (WLAN) technology, the ZigBee communication technology, the wireless USB technology, or the mobile communication network.
In one embodiment, the user input system of the present invention further comprises a display device 31, which is disposed on the back side of the optical film 10. In other words, the optical film 10 is disposed on the display surface of the display device 31. The display device 31 is electrically connected with the external electronic device 30. In such an architecture, the external electronic device 30 receives the coded information from the optical reader device 20, and the display device 31 presents the coded information. For an example, while the user sign or draw on the optical film 10, the external electronic device 30 can instantly present the signature or drawing of the user through the display device 31. For another example, while the user uses the optical reader device 20 to click on a special area of the optical film 10, the optical reader device 20 decodes the coding pattern in the special area to acquire the related control instruction, whereby the user can use the optical reader device 20 and the optical film 10 to undertake click-on, selection, page-down, scrolling, etc.
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In conclusion, the optical film and user input system of the present invention is characterized in that a scattering layer is disposed on the optical film and that a reflective coding pattern is disposed on the scattering layer. Thereby, the coding pattern has a diffuse reflection effect, and the optical reader device can acquire uniform and easy-to-recognize images of the coding pattern.
Number | Date | Country | Kind |
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105125011 | Aug 2016 | TW | national |