WO2001029811A1 - Single horizontal scan range crt monitor - Google Patents

Single horizontal scan range crt monitor Download PDF

Info

Publication number
WO2001029811A1
WO2001029811A1 PCT/US2000/029209 US0029209W WO0129811A1 WO 2001029811 A1 WO2001029811 A1 WO 2001029811A1 US 0029209 W US0029209 W US 0029209W WO 0129811 A1 WO0129811 A1 WO 0129811A1
Authority
WO
WIPO (PCT)
Prior art keywords
signals
resolution
display
scan range
single horizontal
Prior art date
Application number
PCT/US2000/029209
Other languages
French (fr)
Inventor
Yoshihisa Narui
Pablo A. Espinosa
Original Assignee
Sony Electronics, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=23675093&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=WO2001029811(A1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by Sony Electronics, Inc. filed Critical Sony Electronics, Inc.
Priority to KR1020027005120A priority Critical patent/KR20020062292A/en
Priority to JP2001532524A priority patent/JP4477274B2/en
Priority to EP00973787.5A priority patent/EP1222650B1/en
Priority to CA2387072A priority patent/CA2387072C/en
Priority to AU12258/01A priority patent/AU1225801A/en
Publication of WO2001029811A1 publication Critical patent/WO2001029811A1/en

Links

Classifications

    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G5/00Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators
    • G09G5/36Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators characterised by the display of a graphic pattern, e.g. using an all-points-addressable [APA] memory
    • G09G5/39Control of the bit-mapped memory
    • G09G5/391Resolution modifying circuits, e.g. variable screen formats
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G1/00Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data
    • G09G1/06Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows
    • G09G1/14Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows the beam tracing a pattern independent of the information to be displayed, this latter determining the parts of the pattern rendered respectively visible and invisible
    • G09G1/16Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows the beam tracing a pattern independent of the information to be displayed, this latter determining the parts of the pattern rendered respectively visible and invisible the pattern of rectangular co-ordinates extending over the whole area of the screen, i.e. television type raster
    • G09G1/165Details of a display terminal using a CRT, the details relating to the control arrangement of the display terminal and to the interfaces thereto
    • G09G1/167Details of the interface to the display terminal specific for a CRT
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G1/00Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data
    • G09G1/06Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows
    • G09G1/14Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows the beam tracing a pattern independent of the information to be displayed, this latter determining the parts of the pattern rendered respectively visible and invisible
    • G09G1/16Control arrangements or circuits, of interest only in connection with cathode-ray tube indicators; General aspects or details, e.g. selection emphasis on particular characters, dashed line or dotted line generation; Preprocessing of data using single beam tubes, e.g. three-dimensional or perspective representation, rotation or translation of display pattern, hidden lines, shadows the beam tracing a pattern independent of the information to be displayed, this latter determining the parts of the pattern rendered respectively visible and invisible the pattern of rectangular co-ordinates extending over the whole area of the screen, i.e. television type raster
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N7/00Television systems
    • H04N7/01Conversion of standards, e.g. involving analogue television standards or digital television standards processed at pixel level
    • H04N7/0105Conversion of standards, e.g. involving analogue television standards or digital television standards processed at pixel level using a storage device with different write and read speed
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/04Changes in size, position or resolution of an image
    • G09G2340/0407Resolution change, inclusive of the use of different resolutions for different screen areas
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/04Changes in size, position or resolution of an image
    • G09G2340/0407Resolution change, inclusive of the use of different resolutions for different screen areas
    • G09G2340/0414Vertical resolution change
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/04Changes in size, position or resolution of an image
    • G09G2340/0407Resolution change, inclusive of the use of different resolutions for different screen areas
    • G09G2340/0421Horizontal resolution change
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2360/00Aspects of the architecture of display systems
    • G09G2360/02Graphics controller able to handle multiple formats, e.g. input or output formats

Definitions

  • This invention relates to computer monitors and, more particularly, to a single horizontal scan range cathode ray tube (CRT) monitor for use with personal computers having differing output display signal formats.
  • CTR cathode ray tube
  • a PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to a CRT multiple scanning frequency monitor 14.
  • the monitor 14 has to detect the frequency and adjust its scanning frequency to match that of the initial display signals.
  • Such a monitor is complex and expensive to build.
  • the PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to a single scan frequency liquid crystal display (LCD) monitor 1 6.
  • the LCD monitor 1 6 includes an A/D converter 1 8 that converts the received analog signals into digital signals.
  • a scaling engine 20 within the LCD monitor 1 6 converts the digital display signals into a frequency and resolution that are compatible with the LCD monitor 1 6 and supplies them to a display circuit (not shown) within the LCD monitor 1 6. In this arrangement, the A/D converter and the LCD panel are expensive.
  • the PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to an A/D converter 24 of a single scan CRT monitor 22.
  • the output of the A/D converter 24 is supplied to a scaling engine 26 that converts the digital display signals into a frequency and resolution that are compatible with the CRT monitor 22 and supplies them to a D/A converter 28.
  • the analog output display signals of the D/A converter 28 are supplied to the monitor 22 for display at a resolution and frequency compatible with the monitor.
  • the disadvantages of this arrangement are also that it is complex to manufacture and expensive.
  • a PC 30 having an internal scaling engine 32 outputs digital display signals at a resolution and frequency compatible with a single scan LCD monitor 1 6. While this arrangement has the advantage of a lower cost host, the LCD panel is still expensive for general use, e.g. in desktop PCs.
  • a single horizontal scan range monitor preferably a CRT monitor, that is inexpensive, not complex to make, and allows the monitor to be compatible with PCs having display circuits that output display signals at a variety of different scanning frequencies and display resolutions.
  • the above and other objectives are obtained by the present invention of a single horizontal scan range monitor that accepts display signals in a digital format from an external source, such as a personal computer.
  • the initial display signals can have one of a plurality of input resolutions and scanning frequencies.
  • a converter supplied with the initial display signals detects the particular input resolution of the initial display signals and converts them to digital output signals having a vertical output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals and a horizontal scanning frequency that is the same as the horizontal scanning frequency of the monitor.
  • the monitor is a cathode ray tube (CRT) monitor.
  • the initial display signals are converted to output signals having a single predetermined horizontal resolution, regardless of the horizontal resolution of the initial display signals.
  • the converter is an integrated circuit chip.
  • the monitor includes a display data input for receiving the initial display data.
  • This display data input can be a receiver where the external source transmits the initial display data in the digital format.
  • the converter is a circuit that includes a frame memory.
  • the display signal conversion is accomplished by controlling the data writing and reading rates to the frame memory.
  • the converter includes, in addition to the frame memory, a resolution detector for detecting the resolution of the initial display signals and outputting a resolution detection signal and a first multiplexer connected between the display data input, the frame memory, and the monitor for switching between writing the initial display signals into the frame memory and reading the digital output signals out of the frame memory to the monitor.
  • An address counter controller controls the addresses at which data are written into the frame memory and read out from the frame memory.
  • a vertical sync generator connected to the resolution detector generates a vertical sync pulse for the monitor at a selected one of a plurality of vertical sync frequencies as a function of the detected resolution of the initial display signals.
  • a horizontal sync generator generates a horizontal sync pulse at the single horizontal scanning frequency of the monitor.
  • a data output clock generator generates a data output clock signal as a product of the single horizontal scanning frequency and a multiplier factor equal to the sum of the horizontal output resolution and a horizontal blanking interval.
  • a second multiplexer receives from the display data input a clock and a vertical sync signal.
  • the second multiplexer is connected to the address counter, the data output clock signal generator, and the horizontal sync generator for selectively supplying to the address counter controller either the combination of the vertical sync signal and the clock from the display data input or the combination of the data output clock signal from the data output clock generator and the horizontal sync pulse from the horizontal sync generator.
  • a sector controller controls the first multiplexer and the second multiplexer to synchronously and alternately write the initial display data to the frame memory at initial resolutions and scanning frequencies and read the digital output data signals from the frame memory to the monitor at resolutions and scanning frequencies that are compatible with the monitor.
  • the converter resides in the monitor, it is preferable to have the display signals transmitted by the PC to the monitor in digital form.
  • a receiver is incorporated as part of the display data input of the monitor and receives the digital display signals and forwards them to the converter.
  • the receiver is one of a transition-minimized differential scaling (TMDS) receiver, a low voltage differential signaling (LVDS) receiver, a low voltage differential signaling display interface (LDI) receiver, and a gigabit video interface (GVIF) receiver.
  • TMDS transition-minimized differential scaling
  • LVDS low voltage differential signaling
  • LLI low voltage differential signaling display interface
  • GVIF gigabit video interface
  • the clock from the receiver is a transition minimized differential scaling (TMDS) clock signal.
  • the horizontal sync generator includes a phase locked loop (PLL) circuit for generating the data output clock.
  • the horizontal sync generator generates horizontal sync pulses at a frequency of 80 kHz.
  • the vertical sync generator generates vertical sync pulses at a selected one of the following frequencies in correspondence with the resolution detection signal: 79.9 Hz, 95.1 Hz, 1 24.8 Hz, 98.9 Hz, 88.4 Hz, and 75.1 Hz.
  • the converters of some of the above-discussed preferred embodiments, particularly those wherein the converter is a integrated circuit, convert the resolution of the initial display signals according to the following table: Input Converted fH(kHz) fV(Hz) Clock (MHz)
  • the conversion of the resolution of the initial display signals is according to the following table:
  • the invention also encompasses the methods embodied in the processing steps carried out by the elements of the above described single horizontal scan range monitors.
  • FIG. 1 is a block diagram of a first possible monitor arrangement that employs a CRT monitor capable of multiple scanning frequencies.
  • Fig. 2 is a block diagram of a second possible monitor arrangement that employs a LCD monitor that incorporates an A/D converter and a scaling engine.
  • Fig. 3 is a block diagram of a third possible monitor arrangement that employs a CRT single scan monitor.
  • Fig. 4 is a block diagram of a fourth possible monitor arrangement that employs a scaling engine in the PC to supply digital output display signals to an LCD monitor.
  • Fig. 5 is a block diagram of a first embodiment of the invention that employs a digital interface video board in the PC that outputs digital display signals to a CRT single scanning frequency monitor incorporating a digital display signal receiver, memory, scaling engine, and D/A converter.
  • Fig. 6 is a more detailed block diagram of the embodiment of Fig. 5.
  • Fig. 7 is a detailed block diagram of a modification of the embodiment of Fig. 5.
  • Fig. 8 is a timing diagram for use in explaining the reading and writing operation for the frame memory of the embodiment of Fig. 7.
  • Figs. 9A and 9B are tables of conversion frequencies and resolutions performed by the invention in two different embodiments.
  • Fig. 1 0 is a block diagram of a second embodiment of the invention.
  • a first embodiment of the invention includes a PC 36 having a digital video interface board 38 that acts as a digital display data transmitter.
  • the transmitter can be any one of a transition minimized differential scaling (TMDS) transmitter, a low voltage differential signaling (LVDS) transmitter, a low voltage differential signaling display interface (LDI) transmitter, or a gigabit video interface (GVIF) transmitter.
  • the PC 36 outputs digital display data according to the transmitter's format for resolution, fH and fV.
  • the transmitter is a TMDS transmitter that transmits encoded RGB video display data and is manufactured by Genesis Microchip Inc.
  • the digital data from the PC 36 is supplied to a CRT single scanning frequency monitor 22 by means of a cable connection or the like.
  • the input display data outputted by the PC 36 is received at a receiver 40 corresponding to the transmitter 38, that is, the receiver 40 is a corresponding TMDS, LVDS, LDI, or GVIF receiver. In this example, it is a TMDS receiver manufactured by Silicon Image as model no. Sil l 51 .
  • the receiver 40 outputs the received digital display data to a scaling engine 42 within the CRT monitor 22. This scaling engine 42 performs a conversion of the digital display signals output by the PC 36 and received by the receiver 40. This conversion can be according to the terms of Fig. 9A.
  • the scaling engine 42 outputs digital display signals having a resolution of 1 400X960 pixels at a horizontal scanning frequency (fH) of 80 kHz and a vertical scanning frequency (fV) of 79.9 Hz.
  • the data output clock is at the frequency of 1 51 .68 MHz.
  • the scaling engine 42 converts these signals to digital display signals having a resolution of 1400x768 pixels, an fH of 80 kHz and an fV of 98.9 MHz.
  • the horizontal resolution of the output digital display signals is a constant 1400 pixels irrespective of the horizontal resolution of the initial display data.
  • the scaling engine 42 can be embodied in an integrated chip of the type described in U.S. Patent No. 5,602,599 and manufactured by Genesis Microchip Inc., 1 999 Concourse Dr., San Jose CA 95131 as models gmZ1 , gmZ2, gmZ3, gmZd l , or gmZRXL Scaling engine 42 can also be a specially programmed microcomputer.
  • the scaling engine 42 utilizes either an on-board memory or a memory 44 within the CRT 22 to render the conversion.
  • This memory can be, for example, dynamic random access memory (DRAM).
  • DRAM dynamic random access memory
  • the digital display signal output from the scaling engine 42 is converted by a D/A converter (actually separate D/A converters for each color) and displayed on the single scan CRT 22.
  • the PC 36 has a digital video interface board 38 that is a TMDS transmitter 48.
  • the digital RGB signals in TMDS format are supplied via a cable or other type of connection to a TMDS receiver 50 within the CRT monitor 22.
  • TMDS receiver 50 One suitable receiver would be Genesis Microchip Inc. 's model gmZRXL
  • the TMDS receiver 50 outputs the initial display signals as 8 bit digital RGB signals to the scaling chip 44.
  • a microprocessor 52 that provides the necessary timing signals and calculations for the scaling functions.
  • the scaling chip 44 writes digital display data to the frame memory 42 that has separate memory planes for RGB signals. Each memory plane holds, for example, 1024X768 8-bit color "words", for example, depending upon the resolution conversion being undertaken.
  • Output digital display data from the scaling chip 44 in the form of 8 bit color words for each of the RGB signals are supplied at the converted resolution according to the table in Fig. 9A to separate D/A converters 46R, 46G, and 46B, respectively.
  • the RGB analog output display signals from the D/A converters 46R, 46G and 46B are supplied to the monitor 22 for display.
  • a discrete circuit replaces the scaling chip 44.
  • the eight bit RGB signals output from the TMDS receiver 50 are supplied to a first selector switch 54.
  • the selector switch selectively connects each of the digital RGB signals either to the input/output (I/O) terminals of a first dynamic RAM (DRAM) 58 or to the I/O terminals of a second DRAM 60.
  • DRAMs 58 and 60 constitute a frame memory.
  • a second selector switch 56 connects the I/O terminals of the DRAMs 58 and 60 to the D/A converter 46, comprised of the separate D/A converters 46R, 46G and 46B, which supply analog display signals to the monitor 22.
  • the TMDS receiver also outputs a horizontal sync signal H.SYNC, a vertical sync signal V.SYNC, and a TMDS clock signal TMDS CLK.
  • H.SYNC and V.SYNC vertical sync signal
  • TMDS CLK TMDS clock signal
  • V.SYNC signals are supplied to a resolution detector 62.
  • the V.SYNC signal is also supplied, along with the TMDS CLK signal, to a third selector switch 68.
  • V.SYNC is further supplied to a sector controller 72.
  • the switch 68 alternatively supplies V.SYNC to an input of either a first address counter controller 64 or a second address counter controller 66.
  • the switch 68 simultaneously also alternatively supplies the TMDS CLK to another input of the first address counter controller 64 or another input of the second address counter controller 66.
  • the address counter controllers 64 and 66 are connected to the address lines of the DRAMs 58 and 60, respectively, to control the addresses at which display data are stored into and read out from the DRAMs 58 and 60. Also connected to the address counter controllers 64 and 66 is a fourth selector switch 70.
  • a horizontal sync generator 78 generates 80kHz ("fH") H.SYNC signals which are supplied to the monitor 22, a phase locked loop (PLL) circuit 74, the D/A converter 46, a vertical sync generator 80, the sector controller 72, and the fourth selector switch 70.
  • the PLL 74 receives the H.SYNC signal having the horizontal scanning frequency fH and outputs a data output clock signal (Read CLK) having a frequency equal to the product of fH and a multiplier factor from a resolution multiplier circuit 76.
  • the multiplier factor is equal to the horizontal resolution of the display output signals plus a horizontal blanking interval.
  • Read CLK fH x (horizontal resolution) x (a constant).
  • Read CLK is supplied to the switch 70 and to the D/A converter 46.
  • the vertical sync generator 80 is supplied with the output of the resolution detector 62.
  • the vertical sync generator 80 changes the frequency fV of its output V.SYNC signal to the monitor 22 in correspondence with the detected resolution of the initial display signals, as is shown in Fig. 9B.
  • the sector controller 72 controls the operations of the switches 54, 56, 68 and 70.
  • the switches 54 and 56 operate synchronously as a first multiplexer so that while selector switch 54 is connected to supply input display signals to be written into DRAM 58, switch 56 is connected to read out stored display signals from DRAM 60 to the monitor 22 through the D/A converter 46.
  • the switches 68 and 70 constitute a second multiplexer and the sector controller 72 controls the switches 68 and 70 to operate synchronously with each other and the switches 54 and 56 so that while the switch 54 is connected to write display data to DRAM 58 and switch 56 is connected to read display data out of DRAM
  • switch 68 is connected to supply the TMDS CLK signal and the V.SYNC signal from the TMDS receiver 50 to address counter controller 64.
  • the sector controller 72 also causes the switch 70 to supply the Read CLK signal from the PLL 74 and the H.SYNC signal from the horizontal sync generator 78 to the address counter controller 66.
  • the sector controller 72 also controls the switches 54, 56, 64 and 66 to simultaneously change their connections to be connected to the other of the two DRAMs 58 and 60 and address counter controllers 64 and 66, respectively. In this way, a first set of received digital display data from the receiver 50 are written into DRAM 58 at one resolution and set of frequencies while a second set of received digital display data are read out of DRAM 60 at a different resolution and set of frequencies.
  • the process is reversed by causing the switches 54, 56, 68 and 70 to simultaneously change over their connections to the other of the two DRAMs 58 or 60, respectively, and the first set of display data are read out of DRAM 58 at the converted resolution and frequencies while a third set of received display data from the TMDS receiver 50 are stored in the DRAM 60.
  • writing of the input display data received from the Receiver 50 to the frame memory DRAMs 58 and 60 is controlled by the 60 Hz V.SYNC signal from the Receiver 50. In the figure, this is indicated by the first "input' period 82 for DRAM 56.
  • the reading out of data from the DRAMs 58 and 60 to the monitor 22 is synchronized with the 98.9 Hz V.SYNC signal from the V.SYNC generator 80. This is illustrated by the output period 84 when the display data are read out from the DRAM 60.
  • the display data stored in the DRAM 58 are next read out at period 86. It is to be understood that the particular fH and fV values used here are merely examples.
  • All the display data stored in one of the DRAMs 58 or 60 can be read out in two 98.9 Hz V.SYNC periods, however, the writing time to the DRAMs is shorter in duration. Note that the duration of the output period 84 exceeds the duration of the input period 82. Because the data writing and data reading periods are unequal in duration, after the first data read/write cycle there is a period during which there might be an overlap of reading and writing operations for the same memory. For example, all of the display data may have been read out from one of the DRAMs before all of the data have been input to the other DRAM. In this case, the DRAM being read out is simply read out again so that the same data are redisplayed. This is illustrated in time periods 90 and 92.
  • display data are read out from DRAM 60 for the first two of three consecutive 98.9 Hz V.SYNC periods during period 90.
  • DRAM 58 is being written to at the timing of V.SYNC from the Receiver 50, the writing of received display data to DRAM 58 is not completed until more than two 98.9 Hz V.SYNC periods have elapsed since the beginning of period 90. That is, all of the display data have been read out from the DRAM 60 before the process of writing data to the DRAM 58 has been completed during period 92. Thus, DRAM 58 is not ready to be read from at this time. Therefore, the display data once read out from DRAM 60 during the first part of period 90 are again read out for the last 98.9 Hz V.SYNC interval 94 of period 90. The viewer of the monitor 22 is not even aware that the same display data are being repeated. Thereafter, the display data are read out from DRAM 58. This process repeats during every display data read/write cycle thereafter.
  • a second embodiment of the invention includes a PC 30 having a scaling engine 34 incorporated therein.
  • This scaling engine 34 performs the same conversion of the digital display signals output within the PC 30 and outputs the converted digital display signals to a D/A converter 28 of the single horizontal scanning frequency CRT monitor 22 for display. This conversion can be according to the terms of Fig. 9A.
  • the horizontal scanning frequency of the monitor 22 is fH, which in the preferred embodiments described herein is 80 kHz.
  • the scaling engine 34 can also be embodied in an integrated circuit chip of the type described in U.S. Patent No.
  • Scaling engine 34 can also be a specially programmed microprocessor. Further, the scaling engine 34 can have essentially the same construction as the circuit of Fig. 7 with the TMDS receiver 50 being replaced by the display adapter of the PC 30. In this embodiment, the conversion is according to Fig. 9B. Described above is a single horizontal scan range CRT monitor that enables a single scan CRT to be economically and conveniently interfaced to PCs having different digital display outputs.

Abstract

A single horizontal scan range CRT monitor that includes a receiver for receiving display signals in a digital format from an external source, the initial display signals having one of a plurality of input resolutions, and a converter connected to the receiver and supplied with the initial display signals for detecting the input resolution of the initial display signals and converting the initial display signals to digital output signals having an output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals, and wherein all of the plurality of output resolutions have a same horizontal resolution and all of the digital output signals have a same horizontal frequency.

Description

SINGLE HORIZONTAL SCAN RANGE CRT MONITOR
Background of the Invention
This invention relates to computer monitors and, more particularly, to a single horizontal scan range cathode ray tube (CRT) monitor for use with personal computers having differing output display signal formats.
There is little standardization among personal computer (PC) manufacturers for the resolution and frequency of the display signals generated by the display cards of the PCs. On the other hand, it is generally more expensive and complicated to make analog monitors which can adapt to a plurality of display signal frequencies. One such possible arrangement is shown in Fig. 1 . In this arrangement a PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to a CRT multiple scanning frequency monitor 14. The monitor 14 has to detect the frequency and adjust its scanning frequency to match that of the initial display signals. Such a monitor is complex and expensive to build.
Still another possible monitor display arrangement is illustrated in Fig. 2. Again the PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to a single scan frequency liquid crystal display (LCD) monitor 1 6. The LCD monitor 1 6 includes an A/D converter 1 8 that converts the received analog signals into digital signals. A scaling engine 20 within the LCD monitor 1 6 converts the digital display signals into a frequency and resolution that are compatible with the LCD monitor 1 6 and supplies them to a display circuit (not shown) within the LCD monitor 1 6. In this arrangement, the A/D converter and the LCD panel are expensive.
Yet another possible arrangement is illustrated in Fig. 3. In this arrangement the PC 1 0 includes a display card (not shown) having a digital to analog (D/A) converter 1 2 to output analog display signals, at a frequency and resolution set by the PC, to an A/D converter 24 of a single scan CRT monitor 22. The output of the A/D converter 24 is supplied to a scaling engine 26 that converts the digital display signals into a frequency and resolution that are compatible with the CRT monitor 22 and supplies them to a D/A converter 28. The analog output display signals of the D/A converter 28 are supplied to the monitor 22 for display at a resolution and frequency compatible with the monitor. The disadvantages of this arrangement are also that it is complex to manufacture and expensive.
Lastly, in the possible arrangement of Fig. 4, a PC 30 having an internal scaling engine 32 outputs digital display signals at a resolution and frequency compatible with a single scan LCD monitor 1 6. While this arrangement has the advantage of a lower cost host, the LCD panel is still expensive for general use, e.g. in desktop PCs.
What is needed is a single horizontal scan range monitor, preferably a CRT monitor, that is inexpensive, not complex to make, and allows the monitor to be compatible with PCs having display circuits that output display signals at a variety of different scanning frequencies and display resolutions.
Summary of the Invention
The above and other objectives are obtained by the present invention of a single horizontal scan range monitor that accepts display signals in a digital format from an external source, such as a personal computer. The initial display signals can have one of a plurality of input resolutions and scanning frequencies. A converter supplied with the initial display signals detects the particular input resolution of the initial display signals and converts them to digital output signals having a vertical output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals and a horizontal scanning frequency that is the same as the horizontal scanning frequency of the monitor. Preferably the monitor is a cathode ray tube (CRT) monitor. In some embodiments, the initial display signals are converted to output signals having a single predetermined horizontal resolution, regardless of the horizontal resolution of the initial display signals. In one preferred embodiment, the converter is an integrated circuit chip.
The monitor includes a display data input for receiving the initial display data. This display data input can be a receiver where the external source transmits the initial display data in the digital format. In some preferred embodiment, the converter is a circuit that includes a frame memory. The display signal conversion is accomplished by controlling the data writing and reading rates to the frame memory. The converter includes, in addition to the frame memory, a resolution detector for detecting the resolution of the initial display signals and outputting a resolution detection signal and a first multiplexer connected between the display data input, the frame memory, and the monitor for switching between writing the initial display signals into the frame memory and reading the digital output signals out of the frame memory to the monitor. An address counter controller controls the addresses at which data are written into the frame memory and read out from the frame memory. A vertical sync generator connected to the resolution detector generates a vertical sync pulse for the monitor at a selected one of a plurality of vertical sync frequencies as a function of the detected resolution of the initial display signals. A horizontal sync generator generates a horizontal sync pulse at the single horizontal scanning frequency of the monitor. A data output clock generator generates a data output clock signal as a product of the single horizontal scanning frequency and a multiplier factor equal to the sum of the horizontal output resolution and a horizontal blanking interval.
A second multiplexer receives from the display data input a clock and a vertical sync signal. The second multiplexer is connected to the address counter, the data output clock signal generator, and the horizontal sync generator for selectively supplying to the address counter controller either the combination of the vertical sync signal and the clock from the display data input or the combination of the data output clock signal from the data output clock generator and the horizontal sync pulse from the horizontal sync generator. A sector controller controls the first multiplexer and the second multiplexer to synchronously and alternately write the initial display data to the frame memory at initial resolutions and scanning frequencies and read the digital output data signals from the frame memory to the monitor at resolutions and scanning frequencies that are compatible with the monitor.
In embodiments where the converter resides in the monitor, it is preferable to have the display signals transmitted by the PC to the monitor in digital form. A receiver is incorporated as part of the display data input of the monitor and receives the digital display signals and forwards them to the converter. In the preferred embodiments, the receiver is one of a transition-minimized differential scaling (TMDS) receiver, a low voltage differential signaling (LVDS) receiver, a low voltage differential signaling display interface (LDI) receiver, and a gigabit video interface (GVIF) receiver.
In one preferred embodiment wherein the receiver is a TMDS receiver, the clock from the receiver is a transition minimized differential scaling (TMDS) clock signal. The horizontal sync generator includes a phase locked loop (PLL) circuit for generating the data output clock. In the preferred embodiment, the horizontal sync generator generates horizontal sync pulses at a frequency of 80 kHz. The vertical sync generator generates vertical sync pulses at a selected one of the following frequencies in correspondence with the resolution detection signal: 79.9 Hz, 95.1 Hz, 1 24.8 Hz, 98.9 Hz, 88.4 Hz, and 75.1 Hz. The converters of some of the above-discussed preferred embodiments, particularly those wherein the converter is a integrated circuit, convert the resolution of the initial display signals according to the following table: Input Converted fH(kHz) fV(Hz) Clock (MHz)
640x480 1400x960 80 79.9 151 .68
720x400 1400x800 80 95.1 151 .68
800x600 1400x600 80 124.8 151 .68
1024x768 1400x768 80 98.9 151 .68
1 1 52x864 1400x864 80 88.4 151 .68
1 280x1024 1400x1024 80 75.1 151 .68 where "Input" is the resolution in pixels of the initial display signals, "Converted" is the resolution in pixels of the display output signals, "fH" is the horizontal frequency of the display output signals in Kilohertz, "fVHz" is the vertical sync frequency of the display output signals, and "Clock" is the data output clock in Megahertz (which is computed by multiplying fH x (horizontal resolution) x (a constant) . In these examples the constant is approximately 1 .35.
In still other embodiments, the conversion of the resolution of the initial display signals is according to the following table:
Input Converted fH(kHz) fV(Hz) Clock (MHz)
640x480 1 280x960 80 79.9 138.24
720x400 720x800 80 95.1 78.08
800x600 800x600 80 124.8 87.04 1 024x768 1 024x768 80 98.9 1 1 1 .36
1 1 52x864 1 1 52x864 80 88.4 125.44
1 280x1024 1 280x1 024 80 75.1 138.24 where the constant for computing the Clock is approximately 1 .36.
The invention also encompasses the methods embodied in the processing steps carried out by the elements of the above described single horizontal scan range monitors.
The foregoing and other objectives, features and advantages of the invention will be more readily understood upon consideration of the following detailed description of certain preferred embodiments of the invention, taken in conjunction with the accompanying drawings.
Brief Description of the Drawings Fig. 1 is a block diagram of a first possible monitor arrangement that employs a CRT monitor capable of multiple scanning frequencies.
Fig. 2 is a block diagram of a second possible monitor arrangement that employs a LCD monitor that incorporates an A/D converter and a scaling engine. Fig. 3 is a block diagram of a third possible monitor arrangement that employs a CRT single scan monitor.
Fig. 4 is a block diagram of a fourth possible monitor arrangement that employs a scaling engine in the PC to supply digital output display signals to an LCD monitor.
Fig. 5 is a block diagram of a first embodiment of the invention that employs a digital interface video board in the PC that outputs digital display signals to a CRT single scanning frequency monitor incorporating a digital display signal receiver, memory, scaling engine, and D/A converter.
Fig. 6 is a more detailed block diagram of the embodiment of Fig. 5. Fig. 7 is a detailed block diagram of a modification of the embodiment of Fig. 5.
Fig. 8 is a timing diagram for use in explaining the reading and writing operation for the frame memory of the embodiment of Fig. 7.
Figs. 9A and 9B are tables of conversion frequencies and resolutions performed by the invention in two different embodiments. Fig. 1 0 is a block diagram of a second embodiment of the invention.
Detailed Description of the Preferred Embodiment
Referring now more particularly to Fig. 5, a first embodiment of the invention includes a PC 36 having a digital video interface board 38 that acts as a digital display data transmitter. The transmitter can be any one of a transition minimized differential scaling (TMDS) transmitter, a low voltage differential signaling (LVDS) transmitter, a low voltage differential signaling display interface (LDI) transmitter, or a gigabit video interface (GVIF) transmitter. The PC 36 outputs digital display data according to the transmitter's format for resolution, fH and fV. In the preferred embodiment, the transmitter is a TMDS transmitter that transmits encoded RGB video display data and is manufactured by Genesis Microchip Inc.
The digital data from the PC 36 is supplied to a CRT single scanning frequency monitor 22 by means of a cable connection or the like. At the CRT monitor 22, the input display data outputted by the PC 36 is received at a receiver 40 corresponding to the transmitter 38, that is, the receiver 40 is a corresponding TMDS, LVDS, LDI, or GVIF receiver. In this example, it is a TMDS receiver manufactured by Silicon Image as model no. Sil l 51 . The receiver 40 outputs the received digital display data to a scaling engine 42 within the CRT monitor 22. This scaling engine 42 performs a conversion of the digital display signals output by the PC 36 and received by the receiver 40. This conversion can be according to the terms of Fig. 9A. For example, for display signals having an original resolution of 640x480 pixels, the scaling engine 42 outputs digital display signals having a resolution of 1 400X960 pixels at a horizontal scanning frequency (fH) of 80 kHz and a vertical scanning frequency (fV) of 79.9 Hz. The data output clock is at the frequency of 1 51 .68 MHz. On the other hand, if the original resolution of the display signals is 1 024x768 pixels, the scaling engine 42 converts these signals to digital display signals having a resolution of 1400x768 pixels, an fH of 80 kHz and an fV of 98.9 MHz. In this embodiment, the horizontal resolution of the output digital display signals is a constant 1400 pixels irrespective of the horizontal resolution of the initial display data.
The scaling engine 42 can be embodied in an integrated chip of the type described in U.S. Patent No. 5,602,599 and manufactured by Genesis Microchip Inc., 1 999 Concourse Dr., San Jose CA 95131 as models gmZ1 , gmZ2, gmZ3, gmZd l , or gmZRXL Scaling engine 42 can also be a specially programmed microcomputer.
The scaling engine 42 utilizes either an on-board memory or a memory 44 within the CRT 22 to render the conversion. This memory can be, for example, dynamic random access memory (DRAM). The digital display signal output from the scaling engine 42 is converted by a D/A converter (actually separate D/A converters for each color) and displayed on the single scan CRT 22.
Referring now more particularly to Fig. 6, the embodiment of Fig. 5 is shown in more detail for the preferred version. In this preferred version the PC 36 has a digital video interface board 38 that is a TMDS transmitter 48. The digital RGB signals in TMDS format are supplied via a cable or other type of connection to a TMDS receiver 50 within the CRT monitor 22. One suitable receiver would be Genesis Microchip Inc. 's model gmZRXL The TMDS receiver 50 outputs the initial display signals as 8 bit digital RGB signals to the scaling chip 44. Within the scaling chip 44 is a microprocessor 52 that provides the necessary timing signals and calculations for the scaling functions.
The scaling chip 44 writes digital display data to the frame memory 42 that has separate memory planes for RGB signals. Each memory plane holds, for example, 1024X768 8-bit color "words", for example, depending upon the resolution conversion being undertaken. Output digital display data from the scaling chip 44 in the form of 8 bit color words for each of the RGB signals are supplied at the converted resolution according to the table in Fig. 9A to separate D/A converters 46R, 46G, and 46B, respectively. The RGB analog output display signals from the D/A converters 46R, 46G and 46B are supplied to the monitor 22 for display.
Referring now more particularly to Fig. 7, another embodiment of the invention is illustrated. Elements that are common to the previously described embodiments have the same reference numbers and their operation will not be described in further detail. In this embodiment a discrete circuit replaces the scaling chip 44. The eight bit RGB signals output from the TMDS receiver 50 are supplied to a first selector switch 54. The selector switch selectively connects each of the digital RGB signals either to the input/output (I/O) terminals of a first dynamic RAM (DRAM) 58 or to the I/O terminals of a second DRAM 60. DRAMs 58 and 60 constitute a frame memory. A second selector switch 56 connects the I/O terminals of the DRAMs 58 and 60 to the D/A converter 46, comprised of the separate D/A converters 46R, 46G and 46B, which supply analog display signals to the monitor 22.
The TMDS receiver also outputs a horizontal sync signal H.SYNC, a vertical sync signal V.SYNC, and a TMDS clock signal TMDS CLK. The H.SYNC and
V.SYNC signals are supplied to a resolution detector 62. The V.SYNC signal is also supplied, along with the TMDS CLK signal, to a third selector switch 68. V.SYNC is further supplied to a sector controller 72. The switch 68 alternatively supplies V.SYNC to an input of either a first address counter controller 64 or a second address counter controller 66. The switch 68 simultaneously also alternatively supplies the TMDS CLK to another input of the first address counter controller 64 or another input of the second address counter controller 66.
The address counter controllers 64 and 66 are connected to the address lines of the DRAMs 58 and 60, respectively, to control the addresses at which display data are stored into and read out from the DRAMs 58 and 60. Also connected to the address counter controllers 64 and 66 is a fourth selector switch 70. A horizontal sync generator 78 generates 80kHz ("fH") H.SYNC signals which are supplied to the monitor 22, a phase locked loop (PLL) circuit 74, the D/A converter 46, a vertical sync generator 80, the sector controller 72, and the fourth selector switch 70. The PLL 74 receives the H.SYNC signal having the horizontal scanning frequency fH and outputs a data output clock signal (Read CLK) having a frequency equal to the product of fH and a multiplier factor from a resolution multiplier circuit 76. The multiplier factor is equal to the horizontal resolution of the display output signals plus a horizontal blanking interval. In the present example Read CLK = fH x (horizontal resolution) x (a constant). Read CLK is supplied to the switch 70 and to the D/A converter 46. Note that the vertical sync generator 80 is supplied with the output of the resolution detector 62. The vertical sync generator 80 changes the frequency fV of its output V.SYNC signal to the monitor 22 in correspondence with the detected resolution of the initial display signals, as is shown in Fig. 9B.
The sector controller 72 controls the operations of the switches 54, 56, 68 and 70. In operation, the switches 54 and 56 operate synchronously as a first multiplexer so that while selector switch 54 is connected to supply input display signals to be written into DRAM 58, switch 56 is connected to read out stored display signals from DRAM 60 to the monitor 22 through the D/A converter 46. The switches 68 and 70 constitute a second multiplexer and the sector controller 72 controls the switches 68 and 70 to operate synchronously with each other and the switches 54 and 56 so that while the switch 54 is connected to write display data to DRAM 58 and switch 56 is connected to read display data out of DRAM
60, switch 68 is connected to supply the TMDS CLK signal and the V.SYNC signal from the TMDS receiver 50 to address counter controller 64. Simultaneously, the sector controller 72 also causes the switch 70 to supply the Read CLK signal from the PLL 74 and the H.SYNC signal from the horizontal sync generator 78 to the address counter controller 66.
The sector controller 72 also controls the switches 54, 56, 64 and 66 to simultaneously change their connections to be connected to the other of the two DRAMs 58 and 60 and address counter controllers 64 and 66, respectively. In this way, a first set of received digital display data from the receiver 50 are written into DRAM 58 at one resolution and set of frequencies while a second set of received digital display data are read out of DRAM 60 at a different resolution and set of frequencies. Then the process is reversed by causing the switches 54, 56, 68 and 70 to simultaneously change over their connections to the other of the two DRAMs 58 or 60, respectively, and the first set of display data are read out of DRAM 58 at the converted resolution and frequencies while a third set of received display data from the TMDS receiver 50 are stored in the DRAM 60.
Referring now more particularly to Fig. 8, the timing of the process for reading and writing to the DRAMs 58 and 60 will be described in more detail. As illustrated in the figure, writing of the input display data received from the Receiver 50 to the frame memory DRAMs 58 and 60 is controlled by the 60 Hz V.SYNC signal from the Receiver 50. In the figure, this is indicated by the first "input' period 82 for DRAM 56. The reading out of data from the DRAMs 58 and 60 to the monitor 22 is synchronized with the 98.9 Hz V.SYNC signal from the V.SYNC generator 80. This is illustrated by the output period 84 when the display data are read out from the DRAM 60. The display data stored in the DRAM 58 are next read out at period 86. It is to be understood that the particular fH and fV values used here are merely examples.
All the display data stored in one of the DRAMs 58 or 60 can be read out in two 98.9 Hz V.SYNC periods, however, the writing time to the DRAMs is shorter in duration. Note that the duration of the output period 84 exceeds the duration of the input period 82. Because the data writing and data reading periods are unequal in duration, after the first data read/write cycle there is a period during which there might be an overlap of reading and writing operations for the same memory. For example, all of the display data may have been read out from one of the DRAMs before all of the data have been input to the other DRAM. In this case, the DRAM being read out is simply read out again so that the same data are redisplayed. This is illustrated in time periods 90 and 92.
After period 86, for example, display data are read out from DRAM 60 for the first two of three consecutive 98.9 Hz V.SYNC periods during period 90.
Because DRAM 58 is being written to at the timing of V.SYNC from the Receiver 50, the writing of received display data to DRAM 58 is not completed until more than two 98.9 Hz V.SYNC periods have elapsed since the beginning of period 90. That is, all of the display data have been read out from the DRAM 60 before the process of writing data to the DRAM 58 has been completed during period 92. Thus, DRAM 58 is not ready to be read from at this time. Therefore, the display data once read out from DRAM 60 during the first part of period 90 are again read out for the last 98.9 Hz V.SYNC interval 94 of period 90. The viewer of the monitor 22 is not even aware that the same display data are being repeated. Thereafter, the display data are read out from DRAM 58. This process repeats during every display data read/write cycle thereafter.
In the above-described embodiment, the scaling engine resides in the monitor. However, in another embodiment the scaling engine can reside within the PC. Referring now more particularly to Fig. 10, a second embodiment of the invention includes a PC 30 having a scaling engine 34 incorporated therein. This scaling engine 34 performs the same conversion of the digital display signals output within the PC 30 and outputs the converted digital display signals to a D/A converter 28 of the single horizontal scanning frequency CRT monitor 22 for display. This conversion can be according to the terms of Fig. 9A. The horizontal scanning frequency of the monitor 22 is fH, which in the preferred embodiments described herein is 80 kHz. The scaling engine 34 can also be embodied in an integrated circuit chip of the type described in U.S. Patent No. 5,602,599 and manufactured by Genesis Microchip Inc., 1 999 Concourse Dr., San Jose CA 951 31 as models gmZ1 , gmZ2, gmZ3, gmZd l , or gmZRXl . Scaling engine 34 can also be a specially programmed microprocessor. Further, the scaling engine 34 can have essentially the same construction as the circuit of Fig. 7 with the TMDS receiver 50 being replaced by the display adapter of the PC 30. In this embodiment, the conversion is according to Fig. 9B. Described above is a single horizontal scan range CRT monitor that enables a single scan CRT to be economically and conveniently interfaced to PCs having different digital display outputs.
Although the present invention has been shown and described with respect to preferred embodiments, various changes and modifications are deemed to lie within the spirit and scope of the invention as claimed. The corresponding structures, materials, acts, and equivalents of all means or step plus function elements in the claims which follow are intended to include any structure, material, or acts for performing the functions in combination with other claimed elements as specifically claimed.

Claims

WHAT IS CLAIMED IS:
1 . A single horizontal scan range monitor supplied with initial display signals in a digital format from an external source, the initial display signals having one of a plurality of input resolutions and comprising: a cathode ray tube (CRT) display having a single horizontal scanning frequency; and a converter supplied with the initial display signals for detecting the input resolution of the initial display signals, converting the initial display signals to digital output signals having a different vertical output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals and the single horizontal scanning frequency of the CRT display and supplying the digital output signals to the CRT display
2. A single horizontal scan range monitor according to claim 1 , wherein the converter includes a frame memory.
3. A single horizontal scan range monitor according to claim 1 , wherein the external source transmits the initial display signals in the digital format and the monitor includes a receiver for receiving the initial display signals and supplying them to the converter.
4. A single horizontal scan range monitor according to claim 3, wherein the receiver is a transition minimized differential scaling (TMDS) receiver.
5. A single horizontal scan range monitor according to claim 3, wherein the receiver is a low voltage differential signaling (LVDS) receiver.
6. A single horizontal scan range monitor according to claim 3, wherein the receiver is a low voltage differential signaling display interface (LDI) receiver.
7. A single horizontal scan range monitor according to claim 3, wherein the receiver is a gigabit video interface (GVIF) receiver.
8. A single horizontal scan range monitor according to claim 1 , further comprising a digital to analog converter for converting the digital output signals to corresponding analog output signals.
9. A single horizontal scan range monitor according to claim 8, wherein the initial display signals and the digital output signals have corresponding red, green and blue components and wherein the digital to analog converter has separate converters for each color component.
1 0. A single horizontal scan range monitor according to claim 1 , wherein the converter converts the initial digital display signals to digital output signals having one predetermined horizontal resolution regardless of the horizontal resolution of the initial digital display signals.
1 1 . A single horizontal scan range monitor according to claim 1 , wherein the converter includes a scaling circuit that converts the resolution of the initial display signals according to the following table:
Input Converted fH (kHz) fV (Hz) Clock (MHz)
640x480 1 400x960 80 79.9 1 51 .68
720x400 1 400x800 80 95.1 1 51 .68 800x600 1 400x600 80 124.8 151 .68
1 024x768 1400x768 80 98.9 151 .68
1 1 52x864 1 400x864 80 88.4 1 51 .68
1 280x1 024 1 400x1024 80 75.1 151 .68 where "Input" is the resolution in pixels of the initial display signals, "Converted" is the resolution in pixels of the display output signals, "fH" is the horizontal frequency of the display output signals in Kilohertz, "fV(Hz)" is the vertical sync frequency of the display output signals, and "Clock" is the data output clock in MHz.
1 2. A single horizontal scan range monitor, comprising: a display having a single horizontal scanning frequency; a display data input for receiving, from an external source, initial display signals in a digital format and having one of a plurality of input resolutions, a clock signal, a horizontal sync signal, and a vertical sync signal; a converter supplied with the initial display signals and the horizontal sync signal and vertical sync signal from the display data input for detecting the input resolution of the initial display signals and converting the initial display signals to digital display output signals having a vertical output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals and the single horizontal scanning frequency of the display; wherein the converter comprises: a frame memory; a resolution detector for detecting the resolution of the initial display signals and outputting a resolution detection signal; a first multiplexer connected between the display data input, the frame memory, and the display for switching between writing the initial display signals into the frame memory and reading the digital display output signals out of the frame memory to the display; an address counter controller for controlling the addresses at which data are written into the frame memory and read out from the frame memory; a vertical sync generator connected to the resolution detector for generating a vertical sync pulse at a selected one of a plurality of vertical sync frequencies as a function of the detected resolution of the initial display signals; a horizontal sync generator for generating a horizontal sync pulse at the single horizontal scanning frequency; a data output clock generator for generating a data output clock signal as a function of the single horizontal scanning frequency and the horizontal resolution of the digital display output signals; a second multiplexer connected between a clock output terminal of display data input, a vertical sync signal output of the display data input, the address counter, the data output clock signal generator, and the horizontal sync generator for selectively supplying to the address counter controller either the combination of the vertical sync signal and the clock from the display data input or the combination of the data output clock signal from the data output clock generator and the horizontal sync pulse from the horizontal sync generator; and a sector controller for controlling the first multiplexer and the second multiplexer to synchronously and alternately write the initial display data to the frame memory at an initial resolution and scanning frequencies and read the digital output data signals from the frame memory to the display at resolutions and scanning frequencies different from those of the initial display data and matched to the requirements of the display.
1 3. A single horizontal scan range monitor according to claim 1 2 wherein the converter resides in the monitor.
14. A single horizontal scan range monitor according to claim 1 2 wherein the converter resides in the external source.
1 5. A single horizontal scan range monitor according to claim 1 2 wherein the display is a cathode ray tube (CRT) .
1 6. A single horizontal scan range monitor according to claim 1 2, wherein the sector controller is supplied with the vertical sync signal from the display data input and the horizontal sync pulse from the horizontal sync generator
1 7. A single horizontal scan range monitor according to claim 1 2, wherein the resolution detector is supplied with the horizontal sync signal and the vertical sync signal from the display data input.
1 8. A single horizontal scan range monitor according to claim 1 2, wherein the external source includes a transmitter for transmitting the initial display signals in the digital format and the display data input includes a receiver for receiving the initial display signals and supplying them to the converter.
1 9. A single horizontal scan range monitor according to claim 1 8, wherein the receiver outputs a transition minimized differential scaling (TMDS) clock signal to the clock output terminal of display data input.
20. A single horizontal scan range monitor according to claim 1 2, wherein the frame memory includes at least two memory banks that are alternately written to and read from, and a pair of address controllers for controlling the reading and writing of data to the memory banks.
21 . A single horizontal scan range monitor according to claim 1 2, wherein the data output clock generator includes a phase locked loop (PLL) circuit supplied with the horizontal sync pulse and a multiplier factor that is a function of the single predetermined horizontal resolution, wherein the data output clock generator generates the data output clock at a frequency equal to the product of the single horizontal scanning frequency and the multiplier factor.
22. A single horizontal scan range monitor according to claim 1 2, wherein the horizontal sync generator generates horizontal sync pulses at a frequency of 80 kHz.
23. A single horizontal scan range monitor according to claim 1 2, wherein the vertical sync generator generates vertical sync pulses at a selected one of the following frequencies in correspondence with the resolution detection signal: 79.9 Hz, 95.1 Hz, 1 24.8 Hz, 98.9 Hz, 88.4 Hz, and 75.1 Hz.
24. A single horizontal scan range monitor according to claim 1 2, wherein the converter converts the resolution of the initial display signals according to the following table:
Input Converted fH(kHz) fV(Hz) Clock (MHz)
640x480 1 280x960 80 79.9 138.24 720x400 720x800 80 95.1 78.08
800x600 800x600 80 124.8 87.04
1 024x768 1024x768 80 98.9 111.36
1 1 52x864 1 1 52x864 80 88.4 125.44
1 280x1 024 1 280x1 024 80 75.1 138.24 where "Input" is the resolution in pixels of the initial display signals, "Converted" is the resolution in pixels of the display output signals, "fH" is the horizontal frequency of the display output signals in Kilohertz, "fV(Hz)" is the vertical sync frequency of the display output signals, and "Clock" is the data output clock in MHz.
25. A method for adapting a single horizontal scan range monitor having a single horizontal scanning frequency to receive and then display initial display signals generated by a computer in a digital format having one of a plurality of input resolutions, comprising the steps of: detecting the input resolution of the initial display signals; converting the initial display signals to digital output signals having a vertical output resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals and the single horizontal scanning frequency; and supplying the digital output signals to the monitor for display.
26. A method for adapting a single horizontal scan range monitor according to claim 25, wherein the converting step includes converting the initial display signals to digital output signals having a single, predetermined horizontal resolution, irrespective of the horizontal resolution of the initial display signals.
27. A method for adapting a single horizontal scan range monitor according to claim 25, wherein the converting step includes the steps of writing to and reading from a frame memory.
28. A method for adapting a single horizontal scan range monitor according to claim 25, further comprising the step of receiving the initial display signals from the computer.
29. A method for adapting a single horizontal scan range monitor according to claim 28, wherein the receiving step includes transition minimized differential scaling (TMDS).
30. A method for adapting a single horizontal scan range monitor according to claim 28, wherein the receiving step includes the step of low voltage differential signaling (LVDS).
31 . A method for adapting a single horizontal scan range monitor according to claim 28, wherein the receiving step includes the step of low voltage differential signaling display interfacing (LDI).
32. A method for adapting a single horizontal scan range monitor according to claim 28, wherein the receiving step includes the step of gigabit video interfacing (GVIF).
33. A method for adapting a single horizontal scan range monitor according to claim 25, further comprising the steps of digital to analog converting the digital output signals to corresponding analog output signals.
34. A method for adapting a single horizontal scan range monitor according to claim 27, wherein the initial display signals and the digital output signals have corresponding red, green and blue components and wherein the digital to analog converting step includes separately digital to analog converting each color component.
35. A method for adapting a single horizontal scan range monitor according to claim 25, wherein the converting step includes a scaling step that converts the resolution of the initial display signals according to the following table:
Input Converted fH (kHz) fV (Hz) Clock (MHz)
640x480 1 400x960 80 79.9 1 51 .68 720x400 1 400x800 80 95.1 1 51 .68
800x600 1400x600 80 1 24.8 1 51 .68
1 024x768 1 400x768 80 98.9 1 51 .68
1 1 52x864 1400x864 80 88.4 1 51 .68
1 280x1 024 1 400x1 024 80 75.1 1 51 .68 where "Input" is the resolution in pixels of the initial display signals, "Converted" is the resolution in pixels of the display output signals, "fH" is the single horizontal scanning frequency of the display output signals in Kilohertz, "fV (Hz)" is the vertical sync frequency of the display output signals, and "Clock" is the data output clock in MHz.
36. A method for adapting a single horizontal scan range monitor having a single horizontal scanning frequency to receive and then display initial display signals generated by a computer in a digital format having one of a plurality of input resolutions, comprising the steps of: receiving the initial display signals and then outputting the initial display signals with the one of the plurality of input resolutions, and additionally outputting a clock signal, a horizontal sync signal, and a vertical sync signal; detecting the input resolution of the initial display signals; converting the initial display signals to digital output signals having an output vertical resolution selected from a plurality of different output resolutions matched to the detected input resolution of the initial display signals, a single, predetermined horizontal resolution, and the single horizontal scanning frequency; and supplying the digital output signals to the monitor; wherein the converting step comprises the steps of: alternately writing the initial display signals into a frame memory and reading the digital output signals out of the frame memory; controlling the addresses at which data are written into the frame memory and read out from the frame memory by means of an address counter controller; generating a vertical sync pulse at a selected one of a plurality of vertical sync frequencies compatible with the monitor as a function of the detected resolution of the initial display signals; generating a horizontal sync pulse at the single horizontal scanning frequency; generating a data output clock; and selectively supplying to the address counter controller either the combination of the vertical sync signal and clock from the initial display data generating step or the combination of a data output clock from the data output clock generating step and a horizontal sync pulse from the horizontal sync pulse generating step to the address counter controller to synchronously and alternately write the initial display data to the frame memory and read the digital output data signals from the frame memory to the monitor.
37. A method for adapting a single horizontal scan range monitor according to claim 36, wherein the monitor is a cathode ray tube (CRT) monitor.
38. A method for adapting a single horizontal scan range monitor according to claim 36, wherein the clock from the receiving step is a transition minimized differential scaling (TMDS) clock signal.
39. A method for adapting a single horizontal scan range monitor according to claim 36, wherein the frame memory includes at least two memory banks, which are alternately written to and read from.
40. A method for adapting a single horizontal scan range monitor according to claim 36, further comprising the step of generating a data output clock using a phase locked loop (PLL) circuit as the product of the horizontal sync and a multiplier factor corresponding to the sum of the desired horizontal resolution and a horizontal blanking interval.
41 . A method for adapting a single horizontal scan range monitor according to claim 36, wherein the horizontal sync-generating step generates horizontal sync pulses at a frequency of 80 kHz.
42. A method for adapting a single horizontal scan range monitor according to claim 36, wherein the vertical sync generating step generates vertical sync pulses at a selected one of the following frequencies in correspondence with the resolution detection signal: 79.9 Hz, 95.1 Hz, 1 24.8 Hz, 98.9 Hz, 88.4 Hz, and 75.1 Hz.
43. A method for adapting a single horizontal scan range monitor according to claim 36, wherein the converting step converts the resolution of the initial display signals according to the following table:
Input Converted fH (kHz) fV (Hz) Clock (MHz) 640x480 1280x960 80 79.9 138.24 720x400 720x800 80 95.1 78.08 800x600 800x600 80 124.8 87.04 1024x768 1024x768 80 98.9 111.36 1152x864 1152x864 80 88.4 125.44 1280x10241280x102480 75.1 138.24 where "Input" is the resolution in pixels of the initial display signals, "Converted" is the resolution in pixels of the display output signals, "fH" is the horizontal frequency of the display output signals in Kilohertz, "fV (Hz)" is the vertical sync frequency of the display output signals, and "Clock" is the data output clock in MHz.
PCT/US2000/029209 1999-10-21 2000-10-23 Single horizontal scan range crt monitor WO2001029811A1 (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
KR1020027005120A KR20020062292A (en) 1999-10-21 2000-10-23 Single horizontal scan range CRT monitor
JP2001532524A JP4477274B2 (en) 1999-10-21 2000-10-23 Single horizontal scanning range cathode ray tube monitor
EP00973787.5A EP1222650B1 (en) 1999-10-21 2000-10-23 Single horizontal scan range crt monitor
CA2387072A CA2387072C (en) 1999-10-21 2000-10-23 Single horizontal scan range crt monitor
AU12258/01A AU1225801A (en) 1999-10-21 2000-10-23 Single horizontal scan range crt monitor

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US09/422,484 1999-10-21
US09/422,484 US6313813B1 (en) 1999-10-21 1999-10-21 Single horizontal scan range CRT monitor

Publications (1)

Publication Number Publication Date
WO2001029811A1 true WO2001029811A1 (en) 2001-04-26

Family

ID=23675093

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2000/029209 WO2001029811A1 (en) 1999-10-21 2000-10-23 Single horizontal scan range crt monitor

Country Status (7)

Country Link
US (2) US6313813B1 (en)
EP (1) EP1222650B1 (en)
JP (1) JP4477274B2 (en)
KR (1) KR20020062292A (en)
AU (1) AU1225801A (en)
CA (1) CA2387072C (en)
WO (1) WO2001029811A1 (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1288892A2 (en) 2001-08-29 2003-03-05 Samsung Electronics Co., Ltd. Scaler chip and display apparatus
WO2003019318A2 (en) * 2001-08-27 2003-03-06 Koninklijke Philips Electronics N.V. Processing module for a computer system device
KR100429993B1 (en) * 2001-09-12 2004-05-03 엘지전자 주식회사 Compensation method and apparatus for system clock signal of video display processor

Families Citing this family (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2000023063A (en) * 1998-06-26 2000-01-21 Sony Corp Video reproducing device and reproducing method
JP2001034245A (en) * 1999-07-21 2001-02-09 Mitsubishi Electric Corp Image display control system, image signal generating device, and image display device
JP2001175231A (en) * 1999-12-17 2001-06-29 Sony Corp Converting circuit of synchronization frequency
US6845450B1 (en) * 2000-02-25 2005-01-18 Genesis Microchip Inc. Display unit storing and using a cryptography key
JP2001320680A (en) * 2000-05-09 2001-11-16 Sony Corp Signal processing unit and method
JP4185678B2 (en) * 2001-06-08 2008-11-26 株式会社日立製作所 Liquid crystal display
US7012610B2 (en) * 2002-01-04 2006-03-14 Ati Technologies, Inc. Portable device for providing dual display and method thereof
JP2004086146A (en) * 2002-06-27 2004-03-18 Fujitsu Display Technologies Corp Method for driving liquid crystal display device, driving control circuit, and liquid crystal display device provided with same
KR100754647B1 (en) * 2002-09-17 2007-09-05 삼성전자주식회사 Device and method for displaying television signal in mobile terminal
KR100492532B1 (en) * 2002-10-24 2005-06-02 엘지전자 주식회사 Display format switching method for digital interface
KR100494713B1 (en) * 2003-03-31 2005-06-13 비오이 하이디스 테크놀로지 주식회사 Liquid crystal display
JP2005099516A (en) * 2003-09-25 2005-04-14 Sony Corp Image processing circuit and image display device
JP2006267230A (en) 2005-03-22 2006-10-05 Mitsubishi Electric Corp Digital video transmission apparatus
US20070201833A1 (en) * 2006-02-17 2007-08-30 Apple Inc. Interface for defining aperture
US20080129751A1 (en) * 2006-12-04 2008-06-05 George Lyons Smart Blanking Graphics Controller, Device Having Same, And Method
KR101367134B1 (en) * 2007-01-04 2014-03-14 삼성디스플레이 주식회사 Driving apparatus of display device
KR101431543B1 (en) * 2008-01-21 2014-08-21 삼성전자주식회사 Apparatus and method of encoding/decoding video
JP6843550B2 (en) * 2016-08-19 2021-03-17 シナプティクス・ジャパン合同会社 Display driver and display device

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5812210A (en) * 1994-02-01 1998-09-22 Hitachi, Ltd. Display apparatus
EP0875882A2 (en) * 1997-04-15 1998-11-04 Genesis Microchip Inc. Multi-scan video timing generator for format conversion
WO1999016243A1 (en) * 1997-09-26 1999-04-01 Sarnoff Corporation Synchronized multiple format video processing method and apparatus

Family Cites Families (48)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4058835A (en) 1974-11-08 1977-11-15 Westinghouse Electric Corporation Scan conversion apparatus
JPS56156872A (en) * 1980-05-08 1981-12-03 Hitachi Ltd Character display unit
US4504852A (en) 1982-09-10 1985-03-12 Beehler, Pavitt, Siegemund, Jagger & Martella Method and apparatus for video standard conversion
US4673929A (en) * 1984-04-16 1987-06-16 Gould Inc. Circuit for processing digital image data in a high resolution raster display system
US4646151A (en) * 1985-02-01 1987-02-24 General Electric Company Television frame synchronizer with independently controllable input/output rates
US5159683A (en) 1986-07-29 1992-10-27 Western Digital Corporation Graphics controller adapted to automatically sense the type of connected video monitor and configure the control and display signals supplied to the monitor accordingly
US4716460A (en) * 1986-10-08 1987-12-29 Sperry Corporation Display refresh memory apparatus utilizing one half frame updating
US4918436A (en) 1987-06-01 1990-04-17 Chips And Technology, Inc. High resolution graphics system
US4888795A (en) * 1987-06-30 1989-12-19 Nec Corporation Videotelephone apparatus for transmitting high and low resolution video signals over telephone exchange lines
JP2892009B2 (en) 1988-05-28 1999-05-17 株式会社東芝 Display control method
US6331862B1 (en) * 1988-07-06 2001-12-18 Lg Philips Lcd Co., Ltd. Image expansion display and driver
US5050102A (en) * 1989-04-28 1991-09-17 Sun Microsystems, Inc. Apparatus for rapidly switching between output display frames using a shared frame gentification memory
JPH0362090A (en) 1989-07-31 1991-03-18 Toshiba Corp Control circuit for flat panel display
KR910006834A (en) 1989-09-29 1991-04-30 아오이 죠이치 Display control device which can change the brightness by the condition of power circuit
US5189401A (en) 1991-06-14 1993-02-23 Unisys Corporation AX and EGA video display apparatus utilizing a VGA monitor
US5488389A (en) * 1991-09-25 1996-01-30 Sharp Kabushiki Kaisha Display device
KR940008811B1 (en) * 1991-10-17 1994-09-26 삼성전자 주식회사 Video field memory apparatus and processing method thereof
JPH05303348A (en) 1992-04-24 1993-11-16 Nec Eng Ltd Lcd video signal interface device
US5289277A (en) * 1992-11-05 1994-02-22 Zenith Electronics Corp. High definition television signal format converter
JP3527259B2 (en) * 1993-04-12 2004-05-17 松下電器産業株式会社 Video signal processing apparatus and processing method
KR950012664B1 (en) * 1993-08-18 1995-10-19 엘지전자주식회사 Hdtv receiver having 1050line interlaced scanning display format
JP3048812B2 (en) 1993-12-15 2000-06-05 三菱電機株式会社 Display monitor
EP0665527B1 (en) 1994-01-28 1999-05-06 Sun Microsystems, Inc. Flat panel display interface for a high resolution computer graphics system
US5446496A (en) * 1994-03-31 1995-08-29 Hewlett-Packard Company Frame rate conversion with asynchronous pixel clocks
JP3123358B2 (en) * 1994-09-02 2001-01-09 株式会社日立製作所 Display device
US6014126A (en) 1994-09-19 2000-01-11 Sharp Kabushiki Kaisha Electronic equipment and liquid crystal display
US5978041A (en) * 1994-10-24 1999-11-02 Hitachi, Ltd. Image display system
US6301299B1 (en) * 1994-10-28 2001-10-09 Matsushita Electric Industrial Co., Ltd. Memory controller for an ATSC video decoder
US5796442A (en) * 1994-11-02 1998-08-18 Texas Instruments Incorporated Multi-format television reciever
JP3544022B2 (en) * 1995-03-14 2004-07-21 キヤノン株式会社 Data processing device for display device
JPH08278486A (en) 1995-04-05 1996-10-22 Canon Inc Device and method for controlling display and display device
US5867178A (en) 1995-05-08 1999-02-02 Apple Computer, Inc. Computer system for displaying video and graphic data with reduced memory bandwidth
US5986707A (en) * 1995-06-07 1999-11-16 Geshwind; David Michael Methods and devices for the creation of images employing variable-geometry pixels
JPH09128330A (en) 1995-11-06 1997-05-16 Sony Corp Video display device
US5710604A (en) * 1996-02-09 1998-01-20 Texas Instruments Incorporated Video memory device for color-sequential-type displays
KR0177111B1 (en) * 1996-02-24 1999-05-01 김광호 Aspect ratio conversion controller of a tv and monitor open width receiver
JPH10108143A (en) * 1996-09-27 1998-04-24 Sony Corp Image display controller and its method
JP3742167B2 (en) * 1996-12-18 2006-02-01 株式会社東芝 Image display control device
WO1998040874A1 (en) * 1997-03-10 1998-09-17 Komatsu Ltd. Image synthesizing device, image conversion device, and methods
JP3020898B2 (en) * 1997-07-22 2000-03-15 株式会社エイ・ティ・アール人間情報通信研究所 A linear estimation method of three-dimensional position by affine camera correction
JPH1197124A (en) 1997-09-22 1999-04-09 Japan Aviation Electron Ind Ltd High-speed transmitting system and connector
US6057889A (en) * 1997-09-26 2000-05-02 Sarnoff Corporation Format-responsive video processing system
US6353460B1 (en) * 1997-09-30 2002-03-05 Matsushita Electric Industrial Co., Ltd. Television receiver, video signal processing device, image processing device and image processing method
US6069663A (en) * 1997-10-06 2000-05-30 Sony Corporation Auto-configuring television and television encoder for computer-style display input
US6226040B1 (en) * 1998-04-14 2001-05-01 Avermedia Technologies, Inc. (Taiwan Company) Apparatus for converting video signal
US6307543B1 (en) 1998-09-10 2001-10-23 Silicon Image, Inc. Bi-directional data transfer using two pair of differential lines as a single additional differential pair
US6411267B1 (en) * 1999-11-17 2002-06-25 Sony Corporation Monitor adjustment by data manipulation
US6550700B1 (en) * 2000-11-27 2003-04-22 The Quaker Oats Company Granular material test milling processes

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5812210A (en) * 1994-02-01 1998-09-22 Hitachi, Ltd. Display apparatus
EP0875882A2 (en) * 1997-04-15 1998-11-04 Genesis Microchip Inc. Multi-scan video timing generator for format conversion
WO1999016243A1 (en) * 1997-09-26 1999-04-01 Sarnoff Corporation Synchronized multiple format video processing method and apparatus

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003019318A2 (en) * 2001-08-27 2003-03-06 Koninklijke Philips Electronics N.V. Processing module for a computer system device
WO2003019318A3 (en) * 2001-08-27 2003-12-04 Koninkl Philips Electronics Nv Processing module for a computer system device
US7227550B2 (en) 2001-08-27 2007-06-05 Koninklijke Philips Electronics, N.V. Processing module for a computer system device
EP1288892A2 (en) 2001-08-29 2003-03-05 Samsung Electronics Co., Ltd. Scaler chip and display apparatus
EP1288892A3 (en) * 2001-08-29 2008-03-05 Samsung Electronics Co., Ltd. Scaler chip and display apparatus
KR100429993B1 (en) * 2001-09-12 2004-05-03 엘지전자 주식회사 Compensation method and apparatus for system clock signal of video display processor

Also Published As

Publication number Publication date
US6816131B2 (en) 2004-11-09
JP4477274B2 (en) 2010-06-09
EP1222650B1 (en) 2017-07-26
JP2003512652A (en) 2003-04-02
CA2387072C (en) 2011-10-11
AU1225801A (en) 2001-04-30
EP1222650A1 (en) 2002-07-17
KR20020062292A (en) 2002-07-25
US20020030695A1 (en) 2002-03-14
US6313813B1 (en) 2001-11-06
CA2387072A1 (en) 2001-04-26

Similar Documents

Publication Publication Date Title
CA2387072C (en) Single horizontal scan range crt monitor
US6104414A (en) Video distribution hub
USRE41564E1 (en) Video signal converting apparatus and a display device having the same
US6078317A (en) Display device, and display control method and apparatus therefor
US6646629B2 (en) Liquid crystal display control device, liquid crystal display device using the same, and information processor
EP0788048A1 (en) Display apparatus interface
US8055968B2 (en) Panel driving circuit that generates panel test pattern and panel test method thereof
US5815208A (en) VGA to NTSC converter and a method for converting VGA image to NTSC images
EP0918278B1 (en) Circuit for simultaneous driving of liquid crystal display panel and television
US6300982B1 (en) Flat panel display apparatus and method having on-screen display function
KR20020013009A (en) Method and apparatus for controlling screen of monitor
MXPA00007414A (en) Over range image display device and method of monitor.
US6606088B1 (en) LCD panel signal processor
KR100266429B1 (en) A data processing apparatus for pdp television
US6822647B1 (en) Displays having processors for image data
JP3505038B2 (en) Display device and computer system
KR100207315B1 (en) Plate display device
KR100196845B1 (en) Apparatus for interfacing video signals of a computer and a television
EP0618563A1 (en) Color palette and clock combination
JPH08140019A (en) Picture display device
JPS6064382A (en) Character image display controller
KR19990080023A (en) Display device for automatically adjusting image position according to display mode change and computer system using same
JP2000250502A (en) Display monitor device
JPH0451091A (en) Image signal generating device
JPH05181446A (en) Graphic display processor

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BY BZ CA CH CN CR CU CZ DE DK DM DZ EE ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NO NZ PL PT RO RU SD SE SG SI SK SL TJ TM TR TT TZ UA UG UZ VN YU ZA ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): GH GM KE LS MW MZ SD SL SZ TZ UG ZW AM AZ BY KG KZ MD RU TJ TM AT BE CH CY DE DK ES FI FR GB GR IE IT LU MC NL PT SE BF BJ CF CG CI CM GA GN GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
DFPE Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed before 20040101)
WWE Wipo information: entry into national phase

Ref document number: 2387072

Country of ref document: CA

REEP Request for entry into the european phase

Ref document number: 2000973787

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2000973787

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 1020027005120

Country of ref document: KR

ENP Entry into the national phase

Ref document number: 2001 532524

Country of ref document: JP

Kind code of ref document: A

WWP Wipo information: published in national office

Ref document number: 2000973787

Country of ref document: EP

WWP Wipo information: published in national office

Ref document number: 1020027005120

Country of ref document: KR

REG Reference to national code

Ref country code: DE

Ref legal event code: 8642