WO1997046005A1 - Improving the color rendition of color television receivers - Google Patents

Improving the color rendition of color television receivers Download PDF

Info

Publication number
WO1997046005A1
WO1997046005A1 PCT/IB1997/000317 IB9700317W WO9746005A1 WO 1997046005 A1 WO1997046005 A1 WO 1997046005A1 IB 9700317 W IB9700317 W IB 9700317W WO 9746005 A1 WO9746005 A1 WO 9746005A1
Authority
WO
WIPO (PCT)
Prior art keywords
color
separate
gamma
television receiver
signal
Prior art date
Application number
PCT/IB1997/000317
Other languages
French (fr)
Inventor
Matthew S. Brennesholtz
Original Assignee
Philips Electronics N.V.
Philips Norden Ab
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
Application filed by Philips Electronics N.V., Philips Norden Ab filed Critical Philips Electronics N.V.
Publication of WO1997046005A1 publication Critical patent/WO1997046005A1/en

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N9/00Details of colour television systems
    • H04N9/64Circuits for processing colour signals
    • H04N9/68Circuits for processing colour signals for controlling the amplitude of colour signals, e.g. automatic chroma control circuits
    • H04N9/69Circuits for processing colour signals for controlling the amplitude of colour signals, e.g. automatic chroma control circuits for modifying the colour signals by gamma correction

Definitions

  • the subject invention relates to improving the image on a display of a color television receiver as seen by the viewer by giving more true to life color.
  • CTR cathode ray tube
  • I k*V ⁇ (1)
  • V the CRT drive voltage
  • k the transconductance
  • 7 the gamma value depending on the detailed design of the electron gun in the CRT.
  • the value of ⁇ for grid drive CRT's is taken to be 2.2
  • cathode drive CRT's 7 is taken to be 2.8.
  • 7 for each of the three guns in a color CRT is the same.
  • the phosphors are linear with current.
  • type (3) errors studies have shown that consumer actually prefer pictures when there is a positive type (3) error, that is, when 7 RECE ⁇ VER > Y BRO ⁇ DCAST . or 7 RECE ⁇ VER > 2.2. Under these conditions, the colors on the screen tend to be more saturated, i.e., more "vivid".
  • This object is achieved in a method for improving the color rendition of a color television receiver having separate color channels, comprising the steps of generating separate color signals; performing a separate gamma correction on each of the color signals; adjusting a bias setting for each of said gamma corrected color signals; and adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said step of performing a separate gamma correction comprises raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
  • an apparatus for improving the color rendition of a color television receiver having separate color channel comprising means for generating separate color signals for the respective separate color channels; means for performing a separate gamma correction on each of the color signals; means for adjusting a bias setting for each of said gamma corrected color signals; and means for adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said means for performing a separate gamma correction comprises means for raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
  • V ' OUT V V IN ⁇ > where 7 is the overall gamma of the camera correction, the gun for each color signal, and the phosphors, whereby said color signals are corrected to eliminate a differential gamma between the separate color channels.
  • a further aspect of the invention provides a color television receiver comprising such an apparatus.
  • Fig. 1 is a block diagram of a known color television receiver
  • Fig. 2 is a block diagram of the color television receiver of Fig. 1 in which the subject invention is incorporated;
  • Fig. 3 is a block diagram of an improvement of the color television of
  • Fig. 4 is a block diagram of a circuit for producing variable 7.
  • Fig. 1 shows a partial block diagram of a color television receiver.
  • a matrix circuit 10 is shown which receives a luminance signal (Y) and color difference signals (R-Y) and (B-Y) from a color demodulator circuit (not shown).
  • a third color difference signal (G-Y) is available which contains no new information, but is a linear combination of the other three signals.
  • the matrix circuit 10 then processes these 3 (or 4) signals to produce R, G and B color signals.
  • a CRT bias circuit 12 then receives these color signals and, in dependence on separate control values, sets the bias for the CRT.
  • this CRT bias circuit allows the adjustment of the black level for the three color signals such that with the particular CRT, a zero drive voltage produces no light output. The adjustment is effected by the receiver manufacturer.
  • the television receiver includes an input for receiving an adjustable "brightness" control value BC which is applied to first inputs of adders 14, 16 and 18 which have second inputs connected to receive three factory cut-off settings R FS , G FS and B FS .
  • the outputs from the adders 14, 16 and 18 are applied to control inputs of the CRT bias circuit 12.
  • the outputs from the CRT bias circuit 12 are applied to separate variable gain amplifiers 20, 22 and 24 having outputs connected to the separate cathodes 34 of the red, green and blue guns in CRT 32.
  • the variable gain amplifiers 20, 22 and 24 are used to control the maximum luminance for each color on display. In order to set this value, the variable gain amplifiers 20, 22 and 24 have gain control inputs to which the receiver manufacturer applies separate correction values to adjust the maximum luminance for each color.
  • provisions are made for user control of the resultant contrast. This is effected by adders 26, 28 and 30 having first inputs interconnected and connected to receive a user control value UGS. Second inputs of the adders 26, 28 and 30 are connected to receive factory adjusted drive setting values R FDS , G FDS and B FDS . Outputs from the adders 26, 28 and 30 are connected to gain control inputs of the variable gain amplifiers 20, 22 and 24.
  • Fig. 2 shows a block diagram of a color television receiver which is similar to the color television receiver shown in Fig. 1, the same blocks carrying the same reference numbers.
  • the variable gamma circuits 36, 38 and 40 include gamma control inputs for receiving a manufacturer-adjusted setting values 7 R , y a and 7 B .
  • the subject invention contemplates using the adders 14, 16 and 18 couple the overall user control value UC to the factory settings to form the final control values for the gamma control inputs of the variable gamma circuits 36, 38 and 40.
  • Fig. 3 shows a preferred embodiment of the color television receiver of
  • Fig. 2 in which the same blocks have the same reference numbers.
  • the factory cut-off setting of the bias may now be automated.
  • the CRT bias circuit 12 is replaced by separate bias circuits 42, 44 and 46 which receive a feedback control signal from the output of the corresponding variable gain amplifier 20, 22 and 24. As such, the bias is automatically set for the correct black level conditions.
  • Fig. 4 shows a block diagram of a variable gamma circuit for use in color television receivers of Figs. 2 and 3.
  • the variable gamma circuit has a log amplifier 50 for receiving the color signal (R, G or B).
  • a variable gain amplifier 52 has an input connected to the output of the log amplifier and a control input for receiving the gamma control value.
  • an anti-log amplifier 54 has an input connected to an output of the variable gain amplifier 52 and an output for supplying the gamma corrected color signal. While each of these components are separately available, it has been found that in order for the log and anti-log amplifiers to co-operate properly, they must be maintained at the same temperature. Hence, the log and anti-log amplifiers should be formed on a same integrated circuit chip. To that end, it would be convenient to form the variable gain amplifier on the same chip. As a further convenience and to enhance economy, all of the variable gamma circuits 36, 38 and 40 may be formed on the same integrated circuit chip.

Abstract

A method and apparatus for improving the color rendition of a color television receiver includes variable gamma circuits for exponentially correcting the individual color signals. A user control is added to allow user control over the overall gamma of the color television receiver thereby rendering the colors more saturated. With the inclusion of this user gamma control, a separate control for brightness, which affects the overall bias on the CRT, is now obviated.

Description

Improving the color rendition of color television receivers.
The subject invention relates to improving the image on a display of a color television receiver as seen by the viewer by giving more true to life color.
The current in a cathode ray tube (CRT), like other triode vacuum tubes, is a non-linear function of drive voltage. A power function fits the data quite well over the several decades:
I = k*Vγ (1) where I is the cathode or anode current, V is the CRT drive voltage, k is the transconductance, and 7 is the gamma value depending on the detailed design of the electron gun in the CRT. Conventionally, the value of γ for grid drive CRT's is taken to be 2.2, and for cathode drive CRT's, 7 is taken to be 2.8. In addition, it is normally assumed that 7 for each of the three guns in a color CRT is the same. For direct view CRT's, it is also normally assumed that the phosphors are linear with current.
While it has been found that these assumptions are not accurate, the errors introduced are to such a small extent that if only luminance and monochrome images are examined, it will make little difference. However, when chromaticities of desaturated colors are examined, the errors introduced can be large. One manifestation of this is the difficulty in getting satisfactory skin tones on a CRT display.
However, these assumptions are built into the television industry. Receiver manufacturers expect gamma correction and color encoding to be controlled by broadcasters and other video sources to match the CRT characteristics specified by the NTSC standard. However, the CRT defined by the NTSC standard bears little relationship, in terms of 7 or chromaticity, to CRT's currently in production. Receiver manufacturers add decoding circuits to partially correct for the color differences, but do not correct for the gamma differences. This decoding is done by the receivers to display the most pleasing picture on the screen, which is not always the picture with the most accurate color rendition. Color errors of one type are used to balance errors of a different type, leading to improvement in one portion of the color gamut and a color gamut and a degradation in another region. Studies have identified three major sources of color error: (1) Cathode bias offset from the correct value for the particular tube in a television receiver;
(2) Differential y between the red, green and blue colors (R, G and B) in a television receiver, these gamma differences between the red, green and blue guns in a CRT, or from phosphor non-linearities; and
(3) Gamma difference between the broadcast signal with a nominal 7 of 2,2 and the receiver 7.
In regard to error (3), measured receiver 7 values were in the range of 2.1 - 2.7. In correcting these errors, manufacturers deliberately introduce errors of type (1) to partially cancel the errors of type (2). If type (1) errors are corrected without correcting type (2) errors, the accuracy of the color rendition is actually reduced. Therefore, it is necessary to correct both of these type of errors simultaneously in order to improve the color rendition. As such, equation (1) may be modified as follows Ik = k(Vs + VERRORT (2) where V, is the signal voltage, VERROR represents an error in setting the cathode cutoff value, or a deliberate mis-setting of the cutoff, and 7 is the gamma of each gun. If VERROR is positive, the gun produces some current at 0 V,. If VERROR is negative, the gun produces 0 current for all V, < VERR0R. The "brightness" control on the CRT receiver allows the consumer to offset all three guns with the same VERROR.
With regard to type (3) errors, studies have shown that consumer actually prefer pictures when there is a positive type (3) error, that is, when 7RECEΓVER > YBROΛDCAST. or 7RECEΓVER > 2.2. Under these conditions, the colors on the screen tend to be more saturated, i.e., more "vivid".
It is an object of the present invention to provide a method and apparatus that will correct type (1) and (2) errors, and give the consumer control of type (3) errors.
This object is achieved in a method for improving the color rendition of a color television receiver having separate color channels, comprising the steps of generating separate color signals; performing a separate gamma correction on each of the color signals; adjusting a bias setting for each of said gamma corrected color signals; and adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said step of performing a separate gamma correction comprises raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
* OUT = " IN7 where 7 is the overall gamma of the camera gamma correction, the gun for each color signal, and the phosphors, whereby said color signals are corrected to eliminate a differential gamma between the separate color channels.
This object is further achieved in an apparatus for improving the color rendition of a color television receiver having separate color channel, said apparatus comprising means for generating separate color signals for the respective separate color channels; means for performing a separate gamma correction on each of the color signals; means for adjusting a bias setting for each of said gamma corrected color signals; and means for adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said means for performing a separate gamma correction comprises means for raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
V ' OUT = V V IN > where 7 is the overall gamma of the camera correction, the gun for each color signal, and the phosphors, whereby said color signals are corrected to eliminate a differential gamma between the separate color channels. A further aspect of the invention provides a color television receiver comprising such an apparatus. Advantageous embodiments are defined by the dependent claims.
As noted above, correcting type (1) errors alone, without correcting type
(2) errors, leads to an actual degradation in color accuracy. A predominant number of the automatic bias control circuits known have assumed that a constant VERROR in equation (2) would be maintained by the circuit, but that the error would not necessarily be zero. Type
(2) errors can be corrected without automatic bias control to give zero bias error. This will give an improvement in color accuracy, if it is done on each of the three colors R, G and B separately. In the past, this has often been done on the luminance channel (Y) of the video signal, but offers no control over type (2) errors. In fact, the application of a Y channel gamma correction will actually make color errors worse, even while it improves luminance errors.
Color errors are most noticeable in flesh tones. If a displayed color is in the "skin tone region", current practice is to introduce a color error to force that color to a true skin tone. This system has several problems. First, it tends to make everyone's skin tone the same color, which is not right in a modern multi-cultural society. Next, if some non- human object is in this color region, the color of the object is forced to a skin tone with sometimes strange results. Finally, this approach corrects only the most visible symptom of the underlying color errors which can be type (1), (2), or (3) or can be due to some other cause like incorrect decoding of the NTSC video signal. With proper 7 error correction in the receiver, the problems and costs of a flesh tone correction circuit can be avoided.
Past practice has been to have two controls called "COLOR" or "CHROMA" and "TINT" or "HUE". Sometimes other names are used. These controls can partially correct type (2) error, but that was not their original intention. These control adjust the decoding of the NTSC video signal, which is a chroma/luma type signal. As such, the controls bear no simple relation to the R, G and B errors introduced by the picture tube. In particular, as the video source changes, the NTSC errors change and the optimum color and tint settings can change. Previous studies of color errors in CRT receivers assumed the R, G and B gamma values were the same. This assumption implied there were no errors of type (2), and therefore, no correction was in order.
These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter.
With the above and additional objects and advantages in mind as well hereinafter appear, the invention will be described with reference to the accompanying drawings, in which:
Fig. 1 is a block diagram of a known color television receiver; Fig. 2 is a block diagram of the color television receiver of Fig. 1 in which the subject invention is incorporated;
Fig. 3 is a block diagram of an improvement of the color television of
Fig. 2; and
Fig. 4 is a block diagram of a circuit for producing variable 7.
Fig. 1 shows a partial block diagram of a color television receiver. A matrix circuit 10 is shown which receives a luminance signal (Y) and color difference signals (R-Y) and (B-Y) from a color demodulator circuit (not shown). In some color television receivers, a third color difference signal (G-Y) is available which contains no new information, but is a linear combination of the other three signals. The matrix circuit 10 then processes these 3 (or 4) signals to produce R, G and B color signals.
The R, G and B color signals are on the order of 1 volt, with black = 0 and white = 1. A CRT bias circuit 12 then receives these color signals and, in dependence on separate control values, sets the bias for the CRT. In particular, this CRT bias circuit allows the adjustment of the black level for the three color signals such that with the particular CRT, a zero drive voltage produces no light output. The adjustment is effected by the receiver manufacturer. However, in order to allow for some user control of "brightness", the television receiver includes an input for receiving an adjustable "brightness" control value BC which is applied to first inputs of adders 14, 16 and 18 which have second inputs connected to receive three factory cut-off settings RFS, GFS and BFS. The outputs from the adders 14, 16 and 18 are applied to control inputs of the CRT bias circuit 12.
The outputs from the CRT bias circuit 12 are applied to separate variable gain amplifiers 20, 22 and 24 having outputs connected to the separate cathodes 34 of the red, green and blue guns in CRT 32. The variable gain amplifiers 20, 22 and 24 are used to control the maximum luminance for each color on display. In order to set this value, the variable gain amplifiers 20, 22 and 24 have gain control inputs to which the receiver manufacturer applies separate correction values to adjust the maximum luminance for each color. Again, as with the CRT bias, provisions are made for user control of the resultant contrast. This is effected by adders 26, 28 and 30 having first inputs interconnected and connected to receive a user control value UGS. Second inputs of the adders 26, 28 and 30 are connected to receive factory adjusted drive setting values RFDS, GFDS and BFDS. Outputs from the adders 26, 28 and 30 are connected to gain control inputs of the variable gain amplifiers 20, 22 and 24.
Fig. 2 shows a block diagram of a color television receiver which is similar to the color television receiver shown in Fig. 1, the same blocks carrying the same reference numbers. In each of the lines between the matrix circuit 10 and the CRT bias circuit 12, there is included a variable gamma (7) circuit 36, 38 and 40. Each of these variable gamma circuits performs the function Vouτ = VjN 'r. These variable gamma circuits allow for the correction of the type (2) errors, while the CRT bias circuit 12 corrects for the type (1) errors. To that end, the variable gamma circuits 36, 38 and 40 include gamma control inputs for receiving a manufacturer-adjusted setting values 7R, ya and 7B. As noted above, it is desirable for the overall gamma to be controllable by the user. At the same time, since now there is a user control for the gamma, there is no need for a user control for the overall bias. Hence, the subject invention contemplates using the adders 14, 16 and 18 couple the overall user control value UC to the factory settings to form the final control values for the gamma control inputs of the variable gamma circuits 36, 38 and 40. Fig. 3 shows a preferred embodiment of the color television receiver of
Fig. 2, in which the same blocks have the same reference numbers. In particular, since there is no user control over the bias, the factory cut-off setting of the bias may now be automated. In particular, the CRT bias circuit 12 is replaced by separate bias circuits 42, 44 and 46 which receive a feedback control signal from the output of the corresponding variable gain amplifier 20, 22 and 24. As such, the bias is automatically set for the correct black level conditions.
Fig. 4 shows a block diagram of a variable gamma circuit for use in color television receivers of Figs. 2 and 3. In particular, the variable gamma circuit has a log amplifier 50 for receiving the color signal (R, G or B). A variable gain amplifier 52 has an input connected to the output of the log amplifier and a control input for receiving the gamma control value. Finally, an anti-log amplifier 54 has an input connected to an output of the variable gain amplifier 52 and an output for supplying the gamma corrected color signal. While each of these components are separately available, it has been found that in order for the log and anti-log amplifiers to co-operate properly, they must be maintained at the same temperature. Hence, the log and anti-log amplifiers should be formed on a same integrated circuit chip. To that end, it would be convenient to form the variable gain amplifier on the same chip. As a further convenience and to enhance economy, all of the variable gamma circuits 36, 38 and 40 may be formed on the same integrated circuit chip.
Numerous alterations and modifications of the structure herein disclosed will present themselves to those skilled in the art. However, it is to be understood that the above described embodiment is for purposes of illustration only and not to be construed as a limitation of the invention. All such modifications which do not depart from the invention are intended to be included within the scope of the appended claims. The invention can be implemented by means of dedicated hardware or by means of a suitably programmed computer.

Claims

Claims:
1. A method improving the color rendition of a color television receiver with separate color channels, comprising the steps: generating separate color signal; performing a separate gamma correction on each of the color signals; adjusting a bias setting for each of said gamma corrected color signals; and; adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said step of performing a separate gamma correction comprises raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
V v OUT = V V IN ? where 7 is the overall gamma of the camera gamma correction, the gun for each color signal, and the phosphors, whereby said color signals are corrected to eliminate a differential gamma between the separate color channels.
2. A method for improving the color rendition of a color television receiver as set forth in claim 1 , wherein said step of adjusting a bias setting comprises adjusting the bias setting for each gamma corrected color signal in relation to a separate bias signal, corresponding, respectively, to said gamma corrected color signal, said separate bias signals being inputted to said color television receiver.
3. A method for improving the color rendition of a color television receiver as set forth in claim 1 , wherein said step of adjusting a bias setting comprises automatically adjusting a bias setting comprises automatically adjusting said setting for a predetermined black level condition.
4. A method for improving me color rendition of a color television receiver as set forth in claim 1 , wherein said step of raising each color signal to an exponention power 7 comprises: inputting a separate control signal for each of said color channels; and forming the relationship:
* OUT = ' IN7 using said control signal.
5. A method for improving the color rendition of a color television receiver as set forth in claim 4, wherein said step of raising each color signal to an exponention power 7 further comprises: inputting a control signal modifying value; and adding the control signal modifying value to each of said control signals.
6. An apparatus for improving the color rendition of a color television receiver having separate color channels, said apparatus comprising: means for generating separate color signals for said respective separate color channels; means for performing a separate gamma correction on each of the color signals; means for adjusting a bias setting for each of said gamma corrected color signals; and means for adjusting a high level drive setting for each of said gamma corrected and bias adjusted signals, wherein said means for performing a separate gamma correction comprises means for raising each color signal to an exponential power 7 which is adjustable between 0.9 and 1.35 in accordance with the relationship:
Figure imgf000010_0001
where 7 is the overall gamma of the camera gamma correction, the gun for each color signal, and the phosphors, whereby said color signals are corrected to eliminate a differential gamma between the separate color channels.
7. An apparatus for improving the color rendition of a color television receiver as set forth in claim 6, wherein said means for raising each color signal to an exponential power 7, for each of said separate channels, comprises: a log amplifiers coupled to receive said color signal; a variable gain amplifier having an input coupled to an output of said log amplifier, said variable gain amplifier having a gain control input for receiving a gain input signal 7; and an anti-log amplifier having an input coupled to an output of said variable gain amplifier, an output of said anti-log amplifier forming said gamma corrected color signal.
8. An apparatus for improving the color rendition of a color television receiver as set forth in claim 7, wherein said means for raising each color signal to an exponential power 7, further comprises means for maintaining said log amplifier and said anti-log amplifier at a same temperature.
9. An apparatus for improving the color rendition of a color television receiver as set forth in claim 8, wherein said log amplifier and said anti-log amplifier are formed on a integrated circuit chip.
10. An apparatus for improving the color rendition of a color television receiver as set forth in claim 9, wherein said variable gain amplifier is also formed on said same integrated circuit chip.
11. An apparatus for improving the color rendition of a color television receiver as set forth in claim 10, wherein the integrated circuit chips, forming the log, anti- log and variable gain amplifier for the separate color channels, are formed as a single integrated chip.
12. A color television receiver comprising an apparatus as defined by claim 6.
PCT/IB1997/000317 1996-05-28 1997-03-27 Improving the color rendition of color television receivers WO1997046005A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US08/653,961 US5889565A (en) 1996-05-28 1996-05-28 Method and apparatus for improving the color rendition of color television receivers
US08/653,961 1996-05-28

Publications (1)

Publication Number Publication Date
WO1997046005A1 true WO1997046005A1 (en) 1997-12-04

Family

ID=24622977

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/IB1997/000317 WO1997046005A1 (en) 1996-05-28 1997-03-27 Improving the color rendition of color television receivers

Country Status (2)

Country Link
US (1) US5889565A (en)
WO (1) WO1997046005A1 (en)

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7191402B2 (en) * 2001-05-10 2007-03-13 Samsung Electronics Co., Ltd. Method and apparatus for adjusting contrast and sharpness for regions in a display device
AU2003274986A1 (en) * 2002-09-21 2004-04-08 Randy Burnworth Method and module system apparatus for improving video
AU2003302968A1 (en) * 2002-12-13 2004-07-09 Koninklijke Philips Electronics N.V. Automatic gamma correction for a matrix display
US7042523B2 (en) * 2003-06-30 2006-05-09 Texas Instruments Incorporated Video correction system and method using logarithmic conversion

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4547797A (en) * 1982-10-12 1985-10-15 Sperry Corporation Apparatus for color tracking and brightness correction for multi-gun color cathode ray tube display
EP0427564A2 (en) * 1989-11-10 1991-05-15 RCA Thomson Licensing Corporation Video signal processing
US5089810A (en) * 1990-04-09 1992-02-18 Computer Accessories Corporation Stacked display panel construction and method of making same
EP0479213A2 (en) * 1990-10-02 1992-04-08 Ikegami Tsushinki Co., Ltd. Nonlinear processing method and apparatus

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NL7009523A (en) * 1970-06-27 1971-12-29
JPS58130676A (en) * 1982-01-29 1983-08-04 Toshiba Corp Gamma compensating circuit
US4589022A (en) * 1983-11-28 1986-05-13 General Electric Company Brightness control system for CRT video display
GB8925438D0 (en) * 1989-11-10 1989-12-28 Rca Licensing Corp Non-linear rgb video signal processing
NL9100174A (en) * 1991-02-01 1992-09-01 Philips Nv COLOR IMAGE DISPLAY AND COLOR CAMERA.
US5398076A (en) * 1993-12-16 1995-03-14 Ati Technologies, Inc. Gamma correcting processing of video signals

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4547797A (en) * 1982-10-12 1985-10-15 Sperry Corporation Apparatus for color tracking and brightness correction for multi-gun color cathode ray tube display
EP0427564A2 (en) * 1989-11-10 1991-05-15 RCA Thomson Licensing Corporation Video signal processing
US5089810A (en) * 1990-04-09 1992-02-18 Computer Accessories Corporation Stacked display panel construction and method of making same
EP0479213A2 (en) * 1990-10-02 1992-04-08 Ikegami Tsushinki Co., Ltd. Nonlinear processing method and apparatus

Also Published As

Publication number Publication date
US5889565A (en) 1999-03-30

Similar Documents

Publication Publication Date Title
US4633299A (en) Color temperature control circuit using saturation level detector
US5949496A (en) Color correction device for correcting color distortion and gamma characteristic
US7084880B2 (en) Video display device and color temperature correction method for the same
EP0258673B1 (en) Method of and apparatus for processing an image according to a correction level
US20020033830A1 (en) Display device
EP0172754B1 (en) Color correction circuit
EP0154527B1 (en) Video signal processor with bias error compensation
EP0467602B1 (en) Contrast corrector for video signal
US7006105B2 (en) Color correction method and color correction program to obtain desired output image
KR920006173B1 (en) Apparatus for correcting errors in color signal transitions
KR20030090849A (en) Video display device
US3689689A (en) Circuit arrangement for color point adjustment
US4812905A (en) System for compensating for the violation of the constant luminance principle in color television systems
US5889565A (en) Method and apparatus for improving the color rendition of color television receivers
KR100228607B1 (en) Color image display apparatus and color camera
CN100382607C (en) Display apparatus and method for reproducing color therewith
EP0427564B1 (en) Video signal processing
EP0154526A2 (en) Error compensated control system in a video signal processor
US4837612A (en) Automatic hue corrector apparatus and method with a capability to correct wide angle demodulator hue signal distortion created in response to predominantly green hue environments
US2722563A (en) Image-reproducing system for colortelevision receiver
US5436671A (en) Method of separating a foreground picture signal from a mixed picture signal, using gamma correction, and arrangement for performing said method
US3324236A (en) Color temperature control
JPS6038714B2 (en) Display circuit device
US6580464B1 (en) Color difference signal correction apparatus
KR100335618B1 (en) Color display device having color temperature conversion function and method of changing color temperature

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): JP KR

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): AT BE CH DE DK ES FI FR GB GR IE IT LU MC NL PT SE

121 Ep: the epo has been informed by wipo that ep was designated in this application
NENP Non-entry into the national phase

Ref country code: JP

Ref document number: 97541882

Format of ref document f/p: F

122 Ep: pct application non-entry in european phase