This application claims the benefit of Korean Patent Application No. 2006-30214 filed on Apr. 3, 2006, which is hereby incorporated by reference.
1. Field of the Invention
The present invention relates to an apparatus and method of converting data, and more particularly, to an apparatus and method of converting data to display smooth and vivid images and to improve the gray scale use efficiency, and an apparatus and method of driving image display devices using the same.
2. Discussion of the Related Art
Recently, various flat display devices that can overcome disadvantageous properties, including the large weight and size, of cathode ray tubes (CRT) have been developed. For example, there are liquid crystal display devices (LCD), plasma display panels (PDP), and light emitting displays (LED). The LCD device displays images by applying an electric field to a liquid crystal layer formed between two glass substrates therein, and controlling the intensity of electric field so as to control the transmittance of light through the liquid crystal layer. The PDP displays images using plasma generated by gas discharge. The LED displays images by luminescence of organic or polymer substance.
Devices including the digital camera, camcorder, and scanner convert natural images into data with a predetermined resolution. Generally, a host system including personal computer, notebook computer, and television that drives the flat display device uses digital data that are discretized into an 8 bit data. Accordingly, as shown in
In order to display an image that is substantially identical to the virtual image using a limited resolution, i.e., 8 bit data, it is necessary to perform a compensation process using various signal processing technologies corresponding to human viewing properties. Without such compensation process, the gray scale of the image converted into the data on the basis of 8 bit input/output gamma property curve may become indistinguishable in areas where the first derivative, i.e., slope, of the gamma property curve is smaller than 1. Here, the X-axis of the gamma property curve is the 8 bit input data and the Y-axis of the gamma property curve is the 8 bit output data.
In the area where the first derivative of gamma property curve, relating the 8 bit output data to input data, is smaller than 1, as shown in area C of
Accordingly, the present invention is directed to an apparatus and method of converting data and an apparatus and method of driving display devices using the same that substantially obviate one or more problems due to limitations and disadvantages of the related art.
An object of the present invention is to provide an apparatus and method of converting data to represent smooth and vivid images and to improve the gray scale use efficiency, and an apparatus and method of driving image display devices using the same.
Additional features and advantages of the invention will be set forth in the description which follows, and in part will be apparent from the description, or may be learned by practice of the invention. The objectives and other advantages of the invention will be realized and attained by the structure particularly pointed out in the written description and claims hereof as well as the appended drawings.
To achieve these and other advantages and in accordance with the purpose of the present invention, as embodied and broadly described, the apparatus for converting data includes a gray scale detector that detects a same gray scale, from an M bit input data, in a plurality of pixels adjacent to one another, and a gray scale corrector that generates an N bit data by correcting one of the same gray scale according to a detection signal output from the gray scale detector, wherein N and M are integers, N being larger than M.
In another aspect, the apparatus of driving an LCD device includes an LCD panel that displays images, a data conversion apparatus that converts an M bit input data into an N bit data, wherein M and N are integers, N being larger than M, a gate driver that supplies a scan pulse to the LCD panel, an N bit data driver that supplies an analog video signal to the LCD panel, and a timing controller that supplies the N bit data output from the data conversion apparatus to the N bit data driver and controls the gate and data drivers, wherein the data conversion apparatus includes a gray scale detector that detects a same gray scale among pixels positioned adjacently from the M bit input data, a gray scale corrector that generates the N bit data by correcting the same gray scale according to a detection signal output from the gray scale detector.
In another aspect, the method of converting data includes detecting a same gray scale, from an M bit input data, in a plurality of pixels adjacent to one another, and generating an N bit data by correcting one of the same gray scale according to a detection signal output from the gray scale detector, wherein N and M are integers, N being larger than M.
In another aspect, the method of driving an image display device to represent images on a display panel includes converting an M bit input data into an N bit data, wherein M and N are integers, N being larger than M, supplying a scan pulse to the display panel, and converting the N bit data to an analog video signal in synchronization with the scan pulse, and supplying the analog video signal to the display panel, wherein converting the M bit data into the N bit data comprises detecting a same gray scale among pixels positioned adjacently from the M bit input data and generating the N bit data by correcting the same gray scale of pixels according to a detection signal.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are intended to provide further explanation of the invention as claimed.
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention. In the drawings:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
The gray scale detector 200 includes a line memory 202 that stores the 8 bit input data (Data) by each horizontal line and a gray scale analyzer 204 that generates the gray scale detection signal (GAS) and gray scale change signal (GVS) after analyzing the stored 8 bit data (LData) supplied from the line memory 202. The line memory 202 includes at least three line memories to store the 8 bit input data (Data) by each horizontal line.
The gray scale analyzer 204 detects a gray scale overlap area, wherein the grayscale of at least two adjacent pixels have the same gray scale, by comparing the gray scale among the pixels being positioned adjacently in horizontal and vertical directions from the stored 8 bit data (LData) of at least three horizontal lines. Thereafter, the gray scales analyzer 204 generates a gray scale detection signal (GAS) indicating the position of gray scale overlap area, and a gray scale change signal (GVS) indicating the gray scale change of adjacent pixels.
As shown in
In addition, the gray scale analyzer 204 generates a gray scale change signal (GVS) corresponding to the change of gray scale in each direction (X, Y, D1, D2). At this time, the gray scale change signal (GVS) is provided with the gray scale of the image that is stored in the I*J block unit. And the gray scales change signal (GVS) includes change of signals in at least one of a plurality of directions among left side<->right side, upper side<->lower side, left upper corner<->right lower corner, and left lower corner<->right upper corner.
The gray scale corrector 210 converts the 8 bit stored data (LData) of I*J block unit, supplied from the line memory 202, into a 10 bit data and outputs the corrected 10 bit data (Data′) after correcting the gray scale of gray scale overlap areas as indicated by the gray scale detection signal (GAS) using the gray scale change signal (GVS).
For example, as shown in
As shown in
As shown in
As a result, the gray scale corrector 210 corrects Ga, Gb, Gc and Gd of the 8 bit gray scale in the gray scale overlap area indicated by the gray scale detection signal (GAS), shown in
The above-mentioned apparatus and method of converting the data according to the preferred embodiment of the present invention generates the gray scale detection signal (GAS) and the gray scale change signal (GVS) by detecting the gray scale of pixels being positioned adjacently in the horizontal and vertical directions from the 8 bit input data (Data) and corrects the gray scale of 8 bit input data (Data) into the 10 bit data (Data′) according to the generated gray scale detection signal (GAS) and gray scale change signal (GVS), thereby obtaining smooth and vivid images.
The LCD panel 102 includes a plurality of thin film transistors (TFT) formed in regions defined by the ‘n’ gate lines (GL1 to GLn) and the ‘m’ data lines (DL1 to DLm) and a plurality of liquid crystal cells that are connected respectively with the thin film transistors (TFT). Each of the thin film transistors (TFT) supplies the analog video signal of data line (DL1 to DLm) to the liquid crystal cell in response to the scan pulse of gate line (GL1 to GLn). The liquid crystal cell is provided with a common electrode and a pixel electrode being connected to the thin film transistor, wherein the liquid crystal layer is placed between the common electrode and the pixel electrode. Accordingly, the liquid crystal layer forms a liquid crystal capacitor (Clc). The liquid crystal cell further includes a storage capacitor (Cst) connected to the gate line so as to store the analog video signal charged to the liquid crystal capacitor (Clc) until the next analog video signal is charged.
The data converter 110 is identical in structure to the data conversion apparatus shown in
The gate driver 104 generates scan pulses, i.e., gate high voltages in response to the gate control signal (GCS) output from the timing controller 108 and sequentially supplies the gate high voltages to the ‘n’ gate lines (GL1 to GLn). The N bit data driver 106 converts the data signal (RGB) supplied from the timing controller 108 into the analog video signal according to the data control signal (DCS) supplied from the timing controller 108, and supplies the analog video signal for one horizontal line to the data lines (DL1 to DLm) by each horizontal period.
The apparatus and method of converting data in the above-mentioned LCD device according to the preferred embodiment of the present invention includes the data converter 110 that generates the gray scale detection signal (GAS) and gray scale change signal (GVS) by detecting the gray scale of pixels being adjacent horizontally and vertically from the 8 bit input data (Data), and corrects the gray scale of 8 bit input data (Data) to the 10 bit data (Data′) according to the gray scale detection signal (GAS) and gray scale change signal (GVS). In addition, the apparatus and method of converting data according to the present invention may be applied to plasma display panels and light-emitting devices as well as the above-mentioned LCD device.
The apparatus and method of converting data according to the present invention and the LCD device using the same can improve the gray scale use efficiency in the data IC of 9 bits or more and obtain smooth and vivid images by increasing or decreasing the gray scale of a local pixel according to a global spatial increase of gray scale in the gray scale overlap area detected from the gray scale of input image.
It will be apparent to those skilled in the art that various modifications and variations can be made in the apparatus and method of converting data and an apparatus and method of driving display devices using the same of the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
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