This application claims the priority benefit of Taiwan application serial no. 96112825, filed Apr. 12, 2007. All disclosure of the Taiwan application is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a driving method. More particularly, the present invention relates to a driving method for a liquid crystal display (LCD).
2. Description of Related Art
The proliferation of multi-media systems in our society depends to a large extent on the progressive development of semiconductor devices and display devices. Display devices such as the cathode ray tube (CRT) have been used for quite some time due to its remarkable display quality, reliability and low cost. Although the conventional CRT has many advantages, the design of the electron gun renders it heavy, bulky and energy wasting. Moreover, there is always some potential risk of hurting viewer's eyes due to its emission of some radiation. With big leaps in the techniques of manufacturing semiconductor devices and optoelectronic devices, high picture quality, slim, low power consumption and radiation-free displays such as the thin film transistor liquid crystal displays (TFT LCD) have gradually become mainstream display products.
The present invention is directed to providing a driving method to restrain the line mura of the display panel.
As embodied and broadly described herein, the present invention provides a driving method for driving a display panel including a plurality of scan lines, a plurality of data lines, and a plurality of pixel units electrically connected to the scan lines and the data lines. The driving method comprises enabling the pixel units controlled by the scan lines through different scanning sequences and inputting image data to the pixel units via the data lines in several consecutive frame times, wherein capacitance coupling effects between the pixel units are varied depending on the scanning sequences.
In the present invention, the pixel units are enabled through different sequences in several consecutive frame times, so as to improve the non-uniform brightness due to capacitance coupling effects between the pixel units, thereby restraining the line mura caused by the non-uniform brightness.
In order to make the aforementioned features and advantages of the present invention comprehensible, preferred embodiments accompanied with figures are described in detail below.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
In this embodiment, a rising edge of the scanning control signals SR1(G1)-SR1(G2n) enables the pixel units 2 controlled by the scan lines G1-G2n, and a falling edge of the scanning control signals SR1(G1)-SR1(G2n) disables the pixel units 2 controlled by the scan lines G1-G2n. However, in other embodiments of the present invention, the falling edge of the scanning control signals SR1(G1)-SR1(G2n) enables the pixel units 2, and the rising edge of the scanning control signals SR1(G1)-SR1(G2n) disables the pixel units 2. More particularly, in an embodiment of the present invention, the enable signal (the rising edge or the falling edge) of the scanning control signals SR1(G1)-SR1(G2n) cooperates with the data signals (not shown) transmitted by the data lines S1-Sm to input an image data to the pixel units 2. In an embodiment of the present invention, the method of inputting the image data to the pixel units 2 via the data lines S1-Sm includes dot inversion driving, line inversion driving, or frame inversion driving.
Referring to
Further, the enable sequence of the pixel units 2 in a third frame time is identical to the enable sequence in the first frame time, and the enable sequence of the pixel units 2 in a fourth frame time is identical to the enable sequence in the second frame time. According to an embodiment of the present invention, when the scanning sequences include m scanning sequences, the consecutive frame times (i.e., a scanning period) can be set as (m*k) frame times, and m, k are positive integers.
In this embodiment, the aforementioned driving method is not limited to be used for driving the display panel shown in
According to an embodiment of the present invention, the enable signal of the scanning control signals SR1(G1)-SR1(G2n) enables the pixel units respectively controlled by each scan line through different scanning sequences in several consecutive frame times. Thus, capacitance coupling effects between the pixel units are varied depending on the scanning sequences, such that the line mura may not easily occur to the display panel.
In this embodiment, each of the display bands 4 is also constituted by pixel units 2 controlled by two adjacent scan lines. In the first and second frame times, the pixel units 2 controlled by the odd scan lines in the same display band 4 are enabled first, and then the pixel units 2 controlled by the even scan lines are enabled. In the third and fourth frame times, the pixel units 2 controlled by the even scan lines in the same display band 4 are enabled first, and then the pixel units 2 controlled by the odd scan lines are enabled.
It should be noted that, though the first and second embodiments respectively adopt two and four frame times as a scanning period to enable the pixel units 2, the scanning period can be set as frame times of a multiple of 2, such as 2, 4, 6 . . . frame times. Similarly, the driving method of this embodiment can be used to drive the display panels 10′ or 10″ shown in
Referring to
In addition, the enable sequence of the pixel units 2 in a fourth frame time is identical to the enable sequence in the first frame time, the enable sequence of the pixel units 2 in a fifth frame time is identical to the enable sequence in the second frame time, and the enable sequence of the pixel units 2 in a sixth frame time is identical to the enable sequence in the third frame time. However, in each scanning period, the enable sequences of the pixel units in each row are not limited by this embodiment, and other permutations and combinations of the enable sequences also fall in the scope of the present invention.
It should be noted that, though this embodiment only adopts three frame times as a scanning period to enable the pixel units 2, the scanning period can be set as frame times of a multiple of 3, such as 3, 6, 9 . . . frame times.
Though in the first, second, and third embodiments, each of the display bands is constituted by pixel units controlled by two or three scan lines, it should be understood that the present invention is not limited herein. Moreover, when each of the display bands is constituted by pixel units controlled by x scan lines, the scanning period can be set as x*y frame times, wherein x, y are positive integer, and x>1.
In view of the above, in the present invention, the pixel units are enabled through different sequences in several consecutive frame times, so as to improve the non-uniform brightness due to capacitance coupling effects between the pixel units, thereby restraining the line mura caused by the non-uniform brightness.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
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