1. Field of the Invention
The present invention relates to a display device and a related positioning method, and more particularly, to a liquid crystal display device and a related positioning method having input functionality.
2. Description of the Prior Art
Liquid crystal displays (LCDs) have been widely customized and become the most popular displays, because of their small size, low power consumption, and low radiation emissions. Among various types of electronic apparatuses, such as multimedia playbacks, mobile phones or personal digital assistants (PDAs), the electronic apparatus having a liquid crystal display with touch screen for performing input processes has gained popularity.
Traditionally, the prior art touch screens are primarily classified into the resistive touch screens and the capacitive touch screens. The resistive touch screen positions a touched position according to related voltage drops changing in response to the touched position. The capacitive touch screen normally comprises a plurality of sensing capacitors, and the touched position can be positioned by analyzing the changing of capacitance of the sensing capacitor corresponding to the touched position. The prior art touch screen comprises a touch panel and a liquid crystal panel separately. The touch panel and the liquid crystal panel are fabricated individually and are assembled together to form the prior touch screen. Consequently, the prior art touch screen has disadvantages such as greater weight, higher cost, and lower light penetrating rate. In order to solve the aforementioned disadvantages, a touch screen having a display device and a touch device on a single panel is developed.
In accordance with an embodiment of the present invention, a display device having input functionality is provided. The display device comprises a substrate, a data line, an inducing element, and a shielding element. The substrate has a pixel electrode and a first conductive line. The data line is disposed on the substrate and crosses the first conductive line. The inducing element is electrically connected to the first conductive line and is disconnected with the pixel electrode. The shielding element is disposed corresponding to the inducing element.
Furthermore, the present invention provides a positioning method for a display device. The display device comprises a counter electrode, an inducing element, and a readout circuit. The positioning method comprises touching the display device in a position, changing a gap between the counter electrode and the inducing element for modulating a conductivity of the inducing element to a modulated conductivity of the inducing element corresponding to the position, generating an inducing signal based on the modulated conductivity of the inducing element, and furnishing the inducing signal to the readout circuit.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. Here, it is to be noted that the present invention is not limited thereto. Furthermore, the step serial numbers concerning the positioning method are not meant thereto limit the operating sequence, and any rearrangement of the operating sequence for achieving same functionality is still within the spirit and scope of the invention.
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The conductivity of the channel 315 is increasing or decreasing in response to the gate voltage of the gate G and the counter voltage of the counter electrode 390. Without any external force applied to the counter substrate 302, the first spacing d1 of the gap is unchanged. Therefore, the conductivity of the channel 315 is controlled only by the gate voltage of the gate G, and is almost not affected by the counter voltage of the counter electrode 390. Meanwhile, a background signal can be generated based on the conductivity of the channel 315 before applying any external force to the counter substrate 302. The shielding element 380 is utilized to prevent the channel 315 from being influenced by ambient light. The shielding element 380 is an optional element and is not a must.
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Some of the plurality of pixel areas Ra further comprises an inducing element 520 and a readout element 530. Each of the plurality of gate lines 540 is a conductive line used for conducting a gate voltage. The readout element 530 is a PMOS transistor, an NMOS transistor, a diode, or a thin film transistor. The inducing signal generated by the inducing element 520 can be transferred to the corresponding readout line 560 via the corresponding readout element 530. The gate G of a switching element 510 and the source S of a corresponding inducing element 520 in the same pixel area Ra are electrically connected to different gate lines 540 respectively.
When the gate of an inducing element 520 is furnished with a negative voltage so that the inducing element 520 is not selected to be active for inducing, the corresponding readout element 530 coupled to the inducing element 520 is utilized to filter noise generated from the inducing element 520. For instance, an undesirable inducing signal caused by ambient light may come out from the inducing element 520, and the undesirable inducing signal can be filtered by the readout element 530. Both the readout element 530 and the readout line 560 are optional elements. That is, the data line 550 may be electrically connected to the inducing element 520 directly and function to act as a readout line.
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The inducing element 520 and the readout element 530 are not necessary to be disposed for each of the plurality of gate lines 540. That is, the inducing element 520 and the readout element 530 can be disposed to the gate lines separated by at least one gate line without the inducing element 520 and the readout element 530 disposed. The readout circuit 990 can be electrically connected to at least one readout line. For instance, the readout circuit 990 in
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Based on the aforementioned panel structure, a related positioning method is disclosed for a display device. The display device comprises a counter electrode, an inducing element, and a readout circuit. The positioning method comprises the following steps:
Step S10: touch the display device in a position;
Step S20: change a gap between the counter electrode and the inducing element for modulating a conductivity of the inducing element to a modulated conductivity of the inducing element corresponding to the position;
Step S30: generate an inducing signal based on the modulated conductivity of the inducing element;
Step S40: furnish the inducing signal to the readout circuit; and
Step S50: analyze the inducing signal for positioning the touched position.
The positioning method described above may comprise generating an electric field for affecting the inducing element based on a voltage of the counter electrode. The electric field is dependent on the voltage and the gap. That is, the conductivity of the inducing element corresponding to the touched position can be modulated in response to the intensity of the electric field dependent on the gap between the counter electrode and the inducing element in the touched position.
The positioning method described above may further comprise the steps of providing a shielding element to shield the inducing element from ambient light, a readout element to filter noise generated from the inducing element, and generating a background signal based on the conductivity of the inducing element prior to touching the display device in the position.
Accordingly, the step S50 may comprise comparing the inducing signal with the background signal for positioning the touched position. Besides, the step S40 may comprise furnishing the inducing signal to the readout circuit for converting the inducing signal into a readout signal, and the step S50 may comprise analyzing the readout signal or comparing the readout signal with the background signal for positioning the touched position.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention.
Number | Date | Country | Kind |
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096131084 | Aug 2007 | TW | national |