The present invention relates generally to displays, and more particularly, to control of the gray-level or color and brightness of active matrix displays and picture elements of such displays.
Flat panel displays typically convert image data into varying voltages fed to an array of picture elements (pixels) causing the pixels to either pass light from a backlight as in a liquid crystal display (LCD), or to emit light as in for example an electroluminescent, LCD display, or organic light emitting diode (OLED) display. The image voltages determine the amount of light from the pixel. Active matrix displays generally include an array of pixels arranged in a row-and-column format, each pixel contains a sample and hold circuit plus, in the case of pixel light emission displays, a power thin film transistor (TFT). One advantage of the active matrix is that each line of the display is held on for the full frame length so that the instantaneous brightness of the pixels is close to the average brightness. This is not true of passive displays since they are on only one line at a time; therefore, each line must have an instantaneous brightness equal to the average brightness multiplied by the number of lines. The active matrix display generally has a longer life time, lower power consumption and is capable of many times the line capability of the passive display. In general all full color monitor, laptop and video flat panel displays employ the active matrix while low resolution monochromatic (area color—icons) are passive.
In the case of the active matrix OLED display, a voltage is placed on the gate of a power transistor in the pixel, which feeds current to the OLED pixel. The higher the gate voltage, the higher the current and the greater the light emission from the pixel. It is difficult to produce uniform pixels and even if such uniform pixels could be produced it is difficult to maintain uniformity during the lifetime of a display containing an array of such pixels. As a result of manufacturing tolerances, transistor current parameters typically vary from pixel to pixel. Also the amount of light emitted by the OLED material varies depending on the OLED's current-to-light conversion efficiency, the age of the OLED material, the environment to which individual pixels of the OLED-based display are exposed, and other factors. For example, the pixels at an edge of the OLED display may age differently than those in the interior near the center, and pixels that are subject to direct sunlight may age differently than those which are shaded or partially shaded. In an attempt to overcome the uniformity problem in emissive displays, several circuit schemes and methodologies are in use today. One scheme uses a current mirror at the pixel where, instead of image voltages, image currents are used to force a particular current through the power transistor feeding the OLED. Also circuits have been designed which test the power transistor threshold voltage and then add the image voltage to the threshold voltage, therefore, subtracting out the threshold voltage so that variances in threshold voltage do not vary the OLED brightness. These circuit schemes are complex, expensive to produce and have not been entirely satisfactory.
Any display that requires a large number of gray shades requires uniformity greater than one shade of gray. For example, a hundred shades of gray require a display uniformity of 1% in order to use one hundred brightness levels. For a thousand gray levels 0.1% brightness uniformity is desired. Since it is difficult, if not impossible, to have a mass production process that holds 0.1% uniformity in the thin film area, another means of forcing uniformity on the display must be found.
One previous approach was to use certain optical feed back circuits, providing a particular type of feedback from optical diodes or optical transistors in an attempt to provide data on the actual brightness of a pixel's light emission and use the fed back data to cause a storage capacitor to discharge, thus, shutting down the power transistor. This requires a photodiode placed at each pixel as well as a means of reacting to the data supplied by the photodiode. Each pixel must have the discharge circuit. Accordingly, each pixel must include a highly complex circuit. Further, the circuit elements themselves, including the photodiode all introduce variables, which introduce non-uniformity. Further this approach only tends to cause uniformity since bright pixels are shut down faster and dim pixels are left on longer, but no exact brightness level is measured or used as a reference.
A second approach added a blocking transistor to the optical diode that relied on the pixel reaching an equilibrium brightness determined by the pixel brightness, the optical response of the diode, and all the parameters that determine the current supplied by the power transistor during the write time of the image line. However, the equilibrium brightness is determined by all the parameters mentioned above and these parameters can vary from pixel to pixel. Therefore, the attempted correction was not pixel-specific and did not take into account the changes for each pixel over time. Another problem is that the particular feedback circuit and method can set the system into oscillations, which if not damped within the line write time, would leave the actual brightness and voltage undetermined at the point of write time cut off.
Accordingly, an apparatus, system. and method is needed that stabilizes a display but advantageously is not effected by variation in photodiodes or other circuit parameters. The apparatus, system, and method should preferably not allow the system to enter oscillation and should allow the full range of brightness to be used over the life of the display.
According to an aspect of the present invention, a method of controlling an array of pixels in an active matrix display to a predetermined emission level is provided. The pixels are arranged in a plurality of rows and a plurality of columns, each pixel having an active matrix element. The method makes use of a plurality of sensors each having a measurable sensor parameter and at least one pixel driver. Light emission is varied from a plurality of pixels in a first row using the pixel driver and the active matrix elements in the pixels. Light emission is received from the pixels at the sensors and a measured value of the measurable sensor parameter is obtained responsive to the received light emission. For each of the plurality of pixels, a control signal is generated for the pixel to maintain constant emission from the light source at the predetermined emission level.
Embodiments of the present invention provide systems, methods, circuits, and apparatuses for controlling emission from a pixel. The emission source may be generally any source known in the art that produces radiation in response to a supplied voltage—including light emitting diodes and organic light emitting diodes at any wavelength including white organic light emitting diodes. In some embodiments, such as an LCD display, the light source is a backlight and light emission from the pixel is controlled by varying the amount of light from the backlight passed through the pixel. Other light sources may be used including electroluminescent cells, inorganic light emitting diodes, vacuum florescent displays, field emission displays and plasma displays. While radiation (or illumination) sources intended to display graphics, images, text, or other data or information for human viewing will primarily be in the visual wavelengths (generally about 400–700 nanometers) it is understood that the invention applies as well to shorter and longer wavelengths as well such as for example, but not limited to ultraviolet and infrared radiation.
Embodiments for controlling each pixel element are generally described in U.S. patent application Ser. No. 10/841,198 entitled “Method and Apparatus for Controlling Pixel Emission,” filed 6 May 2004 incorporated herein by reference. Briefly, Emission from a pixel 100 is received by a sensor 11, as shown in
The sensor 11 is coupled to a control unit 13, such that the control unit 13 receives or determines a value of the sensor's measurable parameter during operation of the pixel 100. A target value 16 is also coupled to the control unit 13 at node 36, allowing the control unit to compare the measurable sensor parameter and the target value 16. The control unit 13 generates a control signal based on this comparison to influence light emission from the pixel 100. The control unit 13 may be implemented in hardware, software, or a combination thereof. In one embodiment, the control unit 13 is implemented as a voltage comparator. Other comparison circuitry or software may also be used.
The target value 16 is representative of the desired emission of the pixel 100 and may take any form including but not limited to, a current value, a voltage value, a capacitance value, or a resistance value, suitable for comparison with the measurable sensor parameter.
The control unit 13 is coupled to a pixel driver 12. The pixel driver 12 is operable to develop a drive signal for the pixel 100 to determine the light emission from the pixel 100. The pixel driver 12 may include any hardware, software, firmware, or combinations thereof suitable for providing a drive signal to the pixel 100. The pixel driver 12 in some embodiments is located outside of the area of the pixel 100. That is, the pixel 100 may be formed on a display substrate, described further below. The pixel driver 12 is preferably located outside of the display area. The pixel driver 12 may be integrated with the display substrate, or may be separate from the display substrate. In some embodiments, portions of the pixel driver 12 are contained within the pixel 100. Embodiments of the present invention provide for coupling information from a sensor regarding light emission from the pixel 100 to the pixel driver 12.
In one embodiment, the pixel driver 12 varies the light emission from the pixel 100 until the measurable sensor parameter indicates that the target value 16 has been achieved. This may indicate that the values match to within a specified degree of certainty, or that the values have attained some predetermined relationship. The control unit 13 then couples a control signal to the pixel driver 12 to stop the variation of the light emission and maintain the light emission level. Accordingly, variations in the pixel 100 are accounted for, as the control unit 13 bases its comparison on the measurable sensor parameter of the sensor 11.
In some embodiments, variations in the sensor 11 may further optionally but advantageously be accounted for through use of a calibration table 17 coupled to the emission control 13 and the target value 16. The sensor 11 is calibrated such that one or more values of the measurable parameter are known for predetermined light intensity levels. Accordingly, in an embodiment where the sensor 11 is a photo-sensitive resistor, the resistance of the sensor is determined at one or more light levels of interest. Calibration procedures are described further below. The calibrated values 17 may be stored, for example, in a look-up table or other format in a memory or other storage device. The target value 16 is coupled to the calibration table 17 and a calibrated value is provided to the control unit 13 for comparison with the measurable sensor parameter of the sensor 11.
Based on the comparison, the control unit 13 couples a control signal to the pixel driver 12 that is varying emission of the pixel 100. In this manner, emission of the pixel 100 is controlled to a particular emission or brightness level, based on a known target value or calibration value of the sensor 11. Variations in fabrication or operation of the sensor 11 may be accounted for during the calibration process of the sensor, described further below. The operation of the light or radiation source 10 is controlled in that the radiation output is monitored and held at a level based on a target value of the measured sensor output.
While components of an apparatus according to the invention are shown in
In the embodiment shown in
In this manner, control is provided generally by varying the light emission from the light source 10 and halting the variation of the light emission when the measured sensor parameter indicates the target emission level has been attained. The light emission may be varied in any manner over time—including, for example, increasing or decreasing ramp, sinusoidal variations, square-wave variations, increasing or decreasing steps, or substantially any other variation with time. In some embodiments, the light emission is varied by turning the light source on and off, once or a plurality of times. Embodiments incorporating a ramp voltage (linear or nonlinear) are conveniently implemented and in some embodiments the ramp voltage can be generated by supplying a square wave voltage (a step voltage) where the voltage ramp is caused by the rise time due to the pixel circuitry's parasitic capacitances and resistances coupled with the storage capacitor and the gate capacitance of the power TFT.
The variation is halted when the value of the measurable sensor parameter indicates that the target emission level has been reached. Embodiments of the present invention accordingly control a light source using a system that does not have a settling time dependent on a particular circuit loop gain, as has been the case in conventional systems utilizing feedback circuits.
Methods and apparatuses for stabilizing a light source according to embodiments of the invention may advantageously be used to control or stabilize one or a plurality of light sources in an electronic display. One embodiment of a controlled array of pixels in an active matrix display is illustrated in
The light sources 10 are arranged in an array format shown in
A plurality of sensors 11 are coupled to the voltage comparator 14. As shown in
The sensors 11 may be simple passive optical resistors for a linear array, but if more than a few rows are desired then an active array may be advantageous to reduce cross-talk among the sensors. Accordingly, one or more of the optical detectors 11 may include an optically sensitive resistor 40 coupled to a transistor 41, or a different switch, as shown in
The optical detectors are calibrated to determine the relationship between the measurable parameter—such as voltage across an optical resistor—and incident radiation. In this manner, the desired brightness level of each pixel may be correlated to a value of the measurable sensor parameter.
During operation, image data is written to a first row. A row is selected by applying voltage from voltage generator 37 to the gate of TFT 33 in the row being selected. Meanwhile all the TFT 33s in the other rows remain in the off state. An image datum is indicative of the desired brightness of the pixel and represents the value of the measurable sensor parameter needed to attain the desired brightness. In the embodiment shown in
When the voltage source 37 in row one places a turn-on voltage on the gate of the transistor 33 for row one, the ramp generator 35 begins to ramp the voltage applied to the drain of the transistor 33 in row one, and thus, the drain of the transistor 31, and thus, the voltage begins to rise on the storage capacitors 32 in row one and the gates of the transistors 30, in the first row only; and the voltage source 38 places a reference voltage (for example, +10 volts) on the voltage divider including the sensors 11 in row one. Although this description focused on the method during writing image data to row one, it is to be understood that any row may be written to using methods described herein.
Accordingly, voltage begins to ramp up on the gates of the power transistors 30 in row one, causing currents to flow through the light sources 10 in row one. Current also begins to flow through the sensors 11 and resistors 25 in row one. This causes the voltages to rise on pins 26 of the voltage comparators 14. As long as the resistance of the optical sensors 11 remains stable the voltages on pins 26 of voltage comparators 14 are stable and below the data voltages placed on pins 36 of the voltage comparators 14. Since, however, the OLEDs are increasing their light emission due to the ramp voltage from ramp generator 35 for row one, the resistance of optical detectors 11 in row one are decreasing according to the brightness of the illumination.
Due to the decrease in resistance of the optical sensors 11 in row one, the voltages on pins 26 of the voltage comparators 14 are increasing due to the higher current flows through resistors 25. The brightness of the pixels in row one determines the voltages on pins 26. When the voltage on pin 26 equals the data voltage placed on pin 36 the output voltage of the voltage comparator 14 switches from a turn-on voltage for the transistor 31 to a turn-off voltage for the transistor 31 (+10 volts to −10 volts, for example). At this point the brightness of each pixel in row one is determined by the data voltage placed on pins 36 of each of the voltage comparators 14.
When the voltage output of each of the voltage comparators 14 switches to a turn-off voltage (−10 Volts, in one embodiment) the gates of the transistors 21 are placed in the off condition and the ramp generator 35 is no longer able to increase the voltage on storage capacitor 32 and power transistor 30 thus, freezing the brightness of the pixel. The time allowed for all the pixels to reach the brightness determined by the data voltages placed on pins 30 of voltage comparators 25 is called the line scan time and is determined by the number of frames per second and the number of lines. For example, a frame rate of 60 fps takes 16.7 ms for each frame. If there are 1000 rows (lines), the line scan time is 16.7 microseconds (μs). Therefore, the display circuitry is advantageously designed so that the maximum brightness allowed (the top gray shade) is reached in less than 16.7 μs in one embodiment. Slower circuitry may also be used by altering the frame rate or number of rows. Other trade-offs in speed and accuracy may be made.
Once row one is completed, the row one light sources 10 are at their desired brightness with the desired gate voltage placed on the power transistors 30 and held by the storage capacitors 32. Voltage source 37 for row one is now switched to place the off voltage on the gate of transistors 33 for row one. Simultaneously, the ramp generator 35 for row one is optionally switched off and the voltage source 38 is switched to an off value, turning off the sensors 11 in row one. This completes the locking of the voltages placed on the gates and storage capacitors in row one regardless of the gate status of the transistors 31. A second row may now be controlled in an analogous manner to row one.
The brightness of each pixel accordingly depends on knowing or estimating the resistances of the optical resistor 11 and the ground resistor 25 coupled with the image data voltages. All variations in the transistors 31 and 30 do not influence the control, nor do the variations in the emission output versus current characteristics of the light sources 10, or the aging history of the light sources 10. Furthermore, the optical sensing circuit also gives information on the ambient light conditions, which can be used to adjust the overall brightness of the light source array to compensate for changing light conditions. If, for example, a shadow falls on one or more of the light sources 10 those sources in the shadow are dimmed, maintaining a uniform appearance of the display.
The embodiment shown in
An embodiment of a controlled display that may be periodically updated or controlled is shown in
The embodiment of a display shown in
Displays using sensor arrays as described with regard to
As described above, the sensors 11 are calibrated to determine the relationship between incident radiation level and measurable sensor parameter value. Referring to the sensor array embodiments in
Once the first level of the grayscale illuminates the optical array, the optical resistors 11 in the array are scanned line by line (or according to some other scheme) at a known voltage supplied by voltage source 58, see
In one embodiment, the time it would take to scan 1000 levels of gray would be about 10 seconds at 100 frames per second. This procedure will give an optical response curve for each element in the optical array. There would be no need to have a gamma correction system in the display. Variance in optical response in the semiconductor used for the optical resistor would be accounted for. Different wavelength light sources, such as red, green, and blue light sources, may be calibrated separately.
The methods and apparatuses according to embodiments of the present invention find use in a variety of applications. Preferred embodiments of displays may be utilized in automotive applications, such as navigation or audio/visual displays, tuner displays, odometer and speedometer displays. Other applications include television display screens (particularly large TV display screens such as those having a picture diagonal larger than 30 inches), computer monitors, large screen scientific information or data displays, cellular phones, personal data assistants, and the like.
From the foregoing it will be appreciated that, although specific embodiments of the invention have been described herein for purposes of illustration, various modifications may be made without deviating from the spirit and scope of the invention. Accordingly, the invention is not limited except as by the appended claims.
The present application claims the benefit of the filing date under 35 U.S.C. §119(e) of U.S. Provisional Application Ser. No. 60/479,342 filed 18 Jun. 2003 entitled “Emission Feedback Stabilized Flat Panel Display”, U.S. Provisional Application Ser. No. 60/523,396 filed 19 Nov. 2003 entitled “Passive Matrix Emission Stabilized Flat Panel Display”, and U.S. Provisional Application Ser. No. 60/532,034, filed 22 Dec. 2003, entitled “Stabilized Flat Panel Display”, all of which are incorporated herein by reference in their entirety. The present application is a continuation-in-part of U.S. patent application Ser. No. 10/841,198 filed May 6, 2004 entitled “Method and Apparatus for Controlling Pixel Emission,” incorporated herein by reference.
Number | Name | Date | Kind |
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4655552 | Togashi | Apr 1987 | A |
6320325 | Cok | Nov 2001 | B1 |
6441560 | Hunter | Aug 2002 | B1 |
6489631 | Young | Dec 2002 | B1 |
6501230 | Feldman | Dec 2002 | B1 |
6518962 | Kimura | Feb 2003 | B1 |
6542138 | Shannon | Apr 2003 | B1 |
Number | Date | Country | |
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20040257355 A1 | Dec 2004 | US |
Number | Date | Country | |
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60532034 | Dec 2003 | US | |
60523396 | Nov 2003 | US | |
60479342 | Jun 2003 | US |
Number | Date | Country | |
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Parent | 10841198 | May 2004 | US |
Child | 10872344 | US |