The invention relates to the field of LED display control technology, and more particularly to a LED display control method, a LED display screen system and a LED display control card.
A conventional control system of a LED display screen system generally uses a sequential scanning method, in particular, for a LED display screen with a n-line scanning mode (i.e., n numbers of row lines), a conventional method is firstly performing the 1st line scan, then the 2nd line scan, and so on until the last line scan (i.e., nth line scan), and afterwards performing the 1st line scan to the nth line scan in that order again, and so repeatedly, the detailed process can refer to the illustration of
During a current line scan which has one or more LEDs required to be lit up, since the row lines of the scanning-type LED display screen each have the parasitic capacitor with respect to the ground potential, charges stored in the parasitic capacitor of row line corresponding to the previous line scan still can drive the LED(s) which are corresponding to the previous line scan and share a same column line(s) with the LEDs required to be lit up during the current line scan to be slightly lit up, such phenomenon is called as ghost-lighting phenomenon. As per the above-described scanning method of the conventional control system, the ghost-lighting corresponding to the 2nd line scan occurs at the position of the 1st line scan, the ghost-lighting corresponding to the 3rd line scan occurs at the position of the 2nd line scan, and so on, because the last line scan (i.e., nth line scan) is the previous line scan of the 1st line scan, the ghost-lighting corresponding to the 1st line scan occurs at the position of the nth line scan; the position of nth line scan is far away from the position of the 1st line scan and thus the ghost-lighting occurred at the position of the nth line scan looks abrupt, in such way, for a displayed image with black background, ghost-lighting points far away from a normally lit up area would be easily observed in the black background area and thereby affect the viewing experience, these points are called as isolated ghost-lighting points.
Therefore, it is needed to settle the above-mentioned isolated ghost-lighting points, so as to improve the user's viewing experience.
Accordingly, in order to overcome the technical drawbacks in the prior art, an embodiment of the invention provides a LED display control method adapted for being applied to a plurality of LEDs electrically connected to N numbers of scan lines, where N is a positive integer greater than 1. In particular, the LED display control method includes steps of: during a first round of scanning, receiving a row selection signal and decoding the received row selection signal to sequentially scan the N numbers of scan lines as per a first scanning order and thereby drive and control the plurality of LEDs; and during a second round of scanning, receiving another row selection signal and decoding the received another row selection signal to sequentially scan the N numbers of scan lines as per a second scanning order and thereby drive and control the plurality of LEDs. The first round of scanning and the second round of scanning are alternately performed, the first scanning order and the second scanning order are mutually reverse orders.
In an embodiment of the invention, the above row selection signals each are a multi-bit digital signal.
In an embodiment of the invention, the digital signal is a 2-bit digital signal, a 3-bit digital signal or a 4-bit digital signal; and correspondingly, a value of N is 4, 8 or 16.
Moreover, an embodiment of the invention provides a LED display screen system including a LED display control card and a LED display board electrically connected with the LED display control card. The LED display board is disposed with a decoder and multiple LEDs electrically connected to N numbers of scan lines, where N is a positive integer greater than 1. The LED display control card is disposed with a forward and reverse alternate scanning driving module. The forward and reverse alternate scanning driving module is configured (i.e., structured and arranged) for: during a first round of scanning, generating a row selection signal to the decoder and thereby the decoder decoding the received row selection signal to sequentially scan the N numbers of scan lines as per a first scanning order so as to drive and control the LEDs; and during a second round of scanning, generating another row selection signal to the decoder and thereby the decoder decoding the received another selection signal to sequentially scan the N numbers of scan lines as per a second scanning order so as to drive and control the LEDs. The first round of scanning and the second round of scanning are alternately performed, the first scanning order and the second scanning order are mutually reverse orders.
In an embodiment of the invention, the above row selection signals associated with the LED display screen system each are a multi-bit digital signal.
In an embodiment of the invention, the LED display control card is disposed with a programmable logic device; the forward and reverse alternate scanning driving module and the programmable logic device are integrated into a same chip.
In addition, an embodiment of the invention provides a LED display control card adapted for receiving an image signal and processing the received image signal to thereby drive and control the LED display board. The LED display board is disposed with multiple LEDs electrically connected to N numbers of scan lines, where N is a positive integer greater than 1. The LED display control card further is disposed with a forward and reverse alternate scanning driving module. The forward and reverse alternate scanning driving module is configured (i.e., structured and arranged) for: during a first round of scanning, generating a row selection signal to the LED display board to thereby control the LED display board to sequentially scan the N numbers of scan lines as per a first scanning order so as to drive and control the multiple LEDs; and during a second round of scanning, generating another row selection signal to the LED display board to thereby control the LED display board to sequentially scan the N numbers of scan lines as per a second scanning order so as to drive and control the multiple LEDs. The first round of scanning and the second round of scanning are alternately performed, the first scanning order and the second scanning order are mutually reverse orders.
In an embodiment of the invention, the row selection signals generated by the LED display control card each are a multi-bit digital signal.
In an embodiment of the invention, the LED display control card is a receiving card or an asynchronous control card.
In an embodiment of the invention, the LED display control card further is disposed with a programmable logic device e.g., FPGA, the forward and reverse alternate scanning driving module and the programmable logic device are integrated into a same chip.
As seen from the foregoing, the invention proposes a forward and reverse alternate scanning method, which can make that ghost-lighting points are distributed at positions of the previous line scan and the latter line scan of LEDs required to be normally lit up and there is no isolated ghost-lighting point. That is, the effect of eliminating isolated ghost-lighting points can be achieved and therefore the user's viewing experience is improved as a result.
By the following detailed description with reference to accompanying drawings, other aspects and features of the invention will become apparent. However, it should be understood that, the drawings only are for the purpose of explanation and not as limiting the scope of the invention, and the scope of the invention should refer to the appended claims. It also be appreciated that, unless otherwise indicated, the drawings are not necessarily drawn to scale, they are merely trying to conceptually illustrate the structures and procedures described herein.
In order to make the above objectives, features and advantages of the invention be more clear and readily understood, concrete embodiments of the invention will be described below in detail with reference to the accompanying drawings.
A scanning method proposed by an embodiment of the invention is a forward and reverse alternate scanning method, and specifically, during a first round of scanning, receiving a row selection signal and decoding the received row selection signal to sequentially scan n numbers of scan lines as per a first scanning order and thereby drive and control a plurality of LEDs electrically connected to the n numbers of scan lines, and during a second round of scanning, receiving another row selection signal and decoding the received another row selection signal to sequentially scan the n numbers of scan lines as per a second scanning order and thereby drive and control the plurality of LEDs electrically connected to the n numbers of LEDs. The first round of scanning and the second round of scanning are alternately performed, the first scanning order and the second scanning order are mutually reverse orders. Herein, it is indicated that, the terminology [Row] associated with [row selection signal] according to the invention only is an idiomatic expression in the art, it is not limited to the horizontal direction or the vertical direction.
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In the above embodiment of the invention, the row selection signal is a multi-bit digital signal, and when a 3-bit digital signal is taken as an example, a single round of scanning is a 8-line scan (i.e., n=8). When the row selection signal is “000”, the 1st line scan is performed; when the row selection signal is “001”, the 2nd line scan is performed; when the row selection signal is “010”, the 3rd line scan is performed; when the row selection signal is “011”, the 4th line scan is performed; when the row selection signal is “100”, the 5th line scan is performed; when the row selection signal is “101”, the 6th line scan is performed; when the row selection signal is “110”, the 7th line scan is performed; and when the row selection signal is “111”, the 8th line scan is performed. Of course, the row selection signal of the invention is not limited to the 3-bit digital signal, it can be a 2-bit digital signal, a 4-bit digital signal or other-bit digital signal, and correspondingly, a single round of scanning may be a 4-line scan, a 16-line scan or other-line scan.
It can be understood that, the forward and reverse alternate scanning driving module 111 according to the above-described embodiment of the invention is not limited to the software module, it can be embodied by a hardware structure instead, for example, regardless of which one round of scanning, when the row selection signal being a 3-bit digital signal still is taken as an example, the programmable logic device for example FPGA chip always sequentially generates the digital signal sequence of “000”, “001”, “010”, “011”, “100”, “101”, “110” and “111”, when the reverse scanning is required to be performed, a set of inverters in the forward and reverse alternate scanning driving module 111 perform logical negation operations to obtain the digital signal sequence of “111”, “110”, “101”, “100”, “011”, “010”, “001” and “000”, and in such way, the forward and reverse alternate scanning mode of the invention also can be realized.
As seen from the foregoing, the above embodiments of the invention propose the forward and reverse alternate scanning method, which can make that the ghost-lighting points are distributed at the positions of previous line scan and the latter line scan of LEDs required to be normally lit up and there is no isolated ghost-lighting point. That is, the beneficial effect of eliminating isolated ghost-lighting points can be achieved and therefore the user's viewing experience is improved.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
The various embodiments of the invention propose a forward and reverse alternate scanning method, which can make that the ghost-lighting points are distributed at the positions of previous line scan and the latter line scan of LEDs required to be normally lit up and there is no isolated ghost-lighting point. That is, the beneficial effect of eliminating isolated ghost-lighting points can be achieved and therefore the user's viewing experience is improved.
Number | Date | Country | Kind |
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201410468310.6 | Sep 2014 | CN | national |
Number | Date | Country | |
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Parent | PCT/CN2015/070714 | Jan 2015 | US |
Child | 14948362 | US |