The present invention relates to light emitting diodes and more particularly to controlling a light level of light emitting diodes.
Light Emitting Diodes (LEDs) can be used for many purposes. One such purpose is to provide backlighting for Liquid Crystal Display (LCD) televisions. With other television technologies, light is often generated as part of the image rendering. For example, in Cathode Ray Tube (CRT) televisions, electrons are shot on a fluorescent screen to render a video image to the user, whereby light is generated in the same process as the video image is rendered. Rendering of images using LCDs in LCD televisions however, does not produce light inherently and requires either reflected light from the room or, more commonly, a light source for the user to be able to view the video image with sufficient light intensity.
Traditionally, fluorescent tubes are used as backlight in LCD displays, but lately LEDs provide an attractive alternative. There are some clear advantages to using LEDs within a backlight (e.g. wider color gamut, i.e. color range), however, there are a few technical challenges which need to be solved. An example of such a challenge is color consistency over time and spatial color uniformity of the backlight. This is a challenge because the output of LEDs changes strongly when their temperature rises, but also during ageing. A temperature difference between two LED segments of 20° C. is already more than enough to result in a visible color difference if no color feedback method is applied. Controlling color over time requires a significant amount of components, resulting in a significant cost.
Consequently, there is a need to provide a method and a light sensor segment, that more efficiently provides control of LEDs.
In view of the above, an objective of the invention is to solve or at least reduce the problems discussed above.
Generally, the above objectives are achieved by the attached independent patent claims. A first aspect of the invention is a method for controlling a light level of light emitting diodes, LEDs, comprised in a light sensor segment comprising a light sensor and a plurality of LEDs, the method comprising the steps of: turning on all LEDs in an LED segment, comprising at least one of the plurality of LEDs, detecting a light level associated with the LED segment, by detecting a light level using the light sensor, repeating the steps of turning on all LEDs in an LED segment and detecting a light level, until all of the plurality of LEDs are turned on, and for each LED of the plurality of LEDs, controlling a light intensity of the each LED of the plurality of LEDs, the intensity control depending on the detected light level associated with an LED segment containing the each LED of the plurality of LEDs. With such a method, a feedback loop is achieved, whereby color and intensity are controlled efficiently.
The method may further comprise the step of turning off the plurality of LEDs.
The steps of turning on all LEDs in an LED segment, detecting a light level, repeating, controlling a light intensity and turning off the plurality of LEDs may be repeated periodically, for a plurality of light sensor segments. This allows updating of the LEDs, for example matching changes in a video signal.
The step of turning on all LEDs in an LED segment may involve turning on all LEDs in the LED segment, the LED segment comprising at least a red, a green and a blue LED, and the step of detecting a light level associated with the LED segment may involve detecting a light level associated with the LED segment, by detecting at least three separate light levels using the light sensor capable of detecting at least red, green and blue light independently, the at least three light levels being associated with the at least red, green and blue LEDs, respectively. This provides an efficient use in the time domain, as only one light sensor is used, allowing the light level for the different colors to be measured in the same time period.
The step of turning on all LEDs in an LED segment may involve turning on one LED of the plurality of LEDs, the one LED constituting the LED segment, the one LED having one color. This allows all colors to be independently measured, whereby there is no need for a light sensor capable of independently detecting light levels of different colors.
The step of controlling a light intensity of the each LED of the plurality of LEDs may involve for each LED of the plurality of LEDs, controlling a light intensity of the each LED of the plurality of LEDs, depending on the light level associated with an LED segment containing the LED each LED of the plurality of LEDs and depending on a state of all of the plurality of LEDs at a time the light level associated with the LED segment containing the LED each LED of the plurality of LEDs was detected. By considering the state of other LEDs, a more accurate measurement is yielded.
The plurality of LEDs may be arranged in a matrix pattern, and the method may further comprise a step, before the detecting a light level, of: turning on all LEDs in LED segments of the light sensor segment situated in another matrix row with respect to a matrix row of the LED segment. By turning on the LEDs in a LED segment, the state is known for the other LEDs as being turned on.
The plurality of LEDs may be arranged in a matrix pattern, and the method may further comprise a step, before the detecting a light level, of: turning off all LEDs in LED segments of the light sensor segment situated in another matrix row with respect to a matrix row of the LED segment. By turning off the LEDs in a LED segment, the state is known for the other LEDs as being turned off.
The method may be adapted for controlling a light level of LEDs of a plurality of light sensor segments, the light sensor segments being arranged in a matrix pattern.
A second aspect of the invention is a light sensor segment comprising: a light sensor for detecting a light level, a plurality of light emitting diodes, LEDs, and a controller, wherein the controller comprises means for turning on all LEDs in an LED segment, comprising at least one of the plurality of LEDs, at a time being distinct from times for turning on any other of the plurality of LEDs, the associated controller further comprises means for detecting a light level associated with the LED segment for each of the plurality of LEDs, after the all LEDs in the LED segment are turned on and before any other of the plurality of LEDs are turned on.
The LED segment may comprise at least a red, a green and a blue LED. Note that other colors are also possible, such as amber.
The light sensor may comprise means for detecting a light level for each LED in the LED segment using a light sensor capable of detecting at least red, green and blue light independently, the red, green and blue light being associated with the red green and blue LED, respectively.
The associated controller may comprise means for turning on one of the plurality of LEDs at a time being distinct from turning on any other of the plurality of LEDs, where the one of the plurality of LEDs has one distinct color.
The light sensor segment may further comprise a reflecting surface, and the light sensor may be arranged on one side of the reflecting surface and the LEDs may be configured to project light to a second side of the reflecting surface. In other words, the sensor is behind the reflecting surface from where the light is projected. The sensor still gets enough light, so holes for the sensors in the reflective surface are avoided.
The light sensor segment may further comprise a reflecting surface, and the light sensor may be arranged by an opening of the reflecting surface on one side of the reflecting surface and the LEDs may be configured to project light to a second side of the reflecting surface. In other words, the sensor is behind holes the reflecting surface from where the light is projected. The amount of light provided to the sensor is thus increased.
The opening may be a circular opening, and the light sensor may be arranged such that a center of the light sensor aligns with a center of the opening.
The light sensor segment may further comprise a lens arranged by the light sensor.
A reflective tube may be arranged between the opening and the sensor.
A third aspect of the invention is a backlight for a display system comprising at least one light sensor segments according to the second aspect.
The backlight for a display system may comprise one controller being an associated controller for all of the at least one light sensor segments.
The backlight for a display system may further comprise at least one pin hole array arranged such that light sensors of the light sensor segments are located on a first side of the at least one pin hole array and LEDs of the light sensor segments may be configured to project light on a second side of the at least one pin hole array, the at least one pin hole array restricting a sensor direction for detecting light for each of the light sensors. This provides better control on what light directions are allowed to affect the light detected by the light sensor.
The backlight for a display system may comprise a lens array arranged such that light sensors of the light sensor segments are located on a first side of the lens array and LEDs of the light sensor segments are configured to project light on a second side of the lens array, the backlight for a display system further comprising a pin hole array arranged between the lens array and the light sensors.
A fourth aspect of the invention is a liquid crystal display comprising at least one liquid crystal display according to the third aspect.
Other objectives, features and advantages of the present invention will appear from the following detailed disclosure, from the attached dependent claims as well as from the drawings.
Generally, all terms used in the claims are to be interpreted according to their ordinary meaning in the technical field, unless explicitly defined otherwise herein. All references to “a/an/the element, device, component, means, step, etc” are to be interpreted openly as referring to at least one instance of the element, device, component, means, step, etc., unless explicitly stated otherwise. The steps of any method disclosed herein do not have to be performed in the exact order disclosed, unless explicitly stated.
Embodiments of the present invention will now be described in more detail, reference being made to the enclosed drawings, in which:
The present invention will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout.
Video data 148 is fed from a suitable source, e.g. television tuner (analogue or digital), DVD player, video game console, VCR, computer, etc. The video data 148 is received in an image processing module 145, which divides the video signal in a signal to an LCD driver module 146 and a signal to a backlight driver module 147. The image processing module 145 is also responsible for ensuring that these signals are in a suitable format for the driver modules 146, 147 to interpret. The LCD driver module 146 provides a signal to an LCD panel 141 based on the signal provided by the image processing module 145. Similarly, the backlight driver module 147 drives a backlight 140 based on the signal provided from the image processing module 145. The backlight 140 thus provides light which is based on the video signal. In this example, the backlight 140 comprises a matrix of LEDs (light emitting diodes). The LCD panel 141 filters the light and provides a detailed image which is based on the original video data 148. Together, the video data dependent backlight 140 and the LCD panel 141 provide a picture with a larger color gamut than would be the case if the backlight was a traditional backlight based on fluorescent tubes. A user of the screen can thereby see a vivid image based on the video data 148.
Now a feedback mechanism will be described, allowing adjustment to the image due to inconsistencies of LEDs in the backlight 140. These inconsistencies may be due to the fact that an output of LEDs changes strongly when their temperature rises, but also during ageing. With a feedback loop, the inconsistencies can be compensated in the image processing module 145, which can then provide an adjusted image signal to the backlight 140, whereby the intensity of each LED in the matrix of LEDs can be adjusted.
Optionally, first in the feedback loop is an optical element 142, improving the light to be detected by a matrix of light sensors 143. The details about this matrix is described in more detail below. Generally, it detects a light level from the LED panel 140 in a two-dimensional matrix. A signal is generated and sent to a controller 144. The controller may be implemented by any commercially available CPU (Central Processing Unit), DSP (Digital Signal Processor), a combination of circuits or any other electronic programmable logic device. Additionally, as temperature affects LED performance, a temperature sensor (not shown) generates temperature data 149, which may be zero-dimensional, one-dimensional or two-dimensional, and provides this data 149 to the controller 144. Based on the data from the light sensor matrix 143 and the temperature sensor, the controller calculates an adjustment signal and provides this to the image processor 145. Subsequently, the image processor combines the adjustment signal and the video data in order to provide an adjusted image to the user.
In
An LED segment, e.g. 11a, can have three LEDs in red, green and blue to allow color mixing, or the LED segment can have only one LED with one color, where colored light from several LED segments are thus mixed.
In
In
According to the present invention, by applying time multiplexing, it is still possible to discern the output of individual LED segments by a single light sensor. Time multiplexing means that adjacent LED segments are not turned on at the same moment and sampled, but turned on slightly after each other and sampled multiple times. In
In this embodiment, the sensor is an RGB sensor, capable of detecting red, green and blue light independently. Consequently, if each LED segment comprises red, green and blue LEDs, all LEDs of each segment can be switched on at the same time, and the light sensor can still detect light from each individual LED.
Consequently, from the measurements at times 356-359, it can be calculated how much light each color of each LED segment 351-354 produces, which is fed to a feedback loop as described above.
In order to retrieve sensible, defined measurements, it helps to make sure the light output of the backlight is defined during each measurement. This is not trivial, because PWM, as explained above, is used to set the amount of light (of each color in each LED segment) and the measurement moments are distributed over a frame time due to the scanning motion of the video information.
The diagram has a number of rows, where each row represents one LED segment. LED segments 411a-d correspond to light sensor segment 11 of
An approach to deal with the uncertainty of other LED segment states, is to set a fixed state of the LED segments as is shown in
An added advantage of this way of working is that during measurement, there is no switching of (substantial) currents in the backlight. This reduces the potential interference (electrical crosstalk) for the sensor. It may be necessary to avoid switching of the entire backlight at once just after sample time 402 (large dI/dt). This is possible by e.g. switching the rows subsequently at very short intervals.
Due to the state control of switching LED segments on or off without considering PWM, the maximum and minimum duty cycles in a backlight using the above approach are affected. However, this change is quite small. Assuming a Taos TCS230 digital color sensor is placed in a backlight unit with 86% reflective optical stack and an optical thickness of 50 mm, the measurement time required for 401 is about 46 μs and for 402 about 23 μs. A very safe estimate before a constant current is realized after switching on is 25 μs. Therefore, 401 takes about 75 μs and 402 about 50 μs.
The minimum and maximum duty cycle for odd and even column numbers can be found by using the following formulae, where column numbers start with number one on the leftmost column and increase to the right:
Substituting with S1 with 75 μs, S2 with 50 μs and a frame time Ft= 1/60 s, we find:
min DC evencolnbr=0.75%
max DC evencolnbr=96.25%
min DC oddcolnbr=0.30%
max DC oddcolnbr=95.80%
Backlights for LCD televisions generally consist of a light-mixing chamber 584, with a highly reflecting white coating 581, in other words a reflecting surface 581. Each LED 585 and/or sensor 582 that is inside the light-mixing chamber causes a reduction of the efficiency due to the absorption of light by the LED 585 and/or sensor 582. Because of the multiple scattering events (and the high degree of light reflection by optical foils 580 such as scattering foils, BEF and/or DBEF foils that are mounted between the light mixing chamber and the LCD panel), the absorption sites have a significant influence on the overall system efficiency. In a (locally) dimmable backlight typically multiple sensors have to be used to control the color and flux of the LEDs, so more absorption can be expected.
In
Typically MC PET foils have a light transmission of 2%, and almost no absorption. Due to the high light level in the light mixing chamber, enough light leaks through the reflecting foil to provide the sensor 582 with light. In this way the sensors do not reduce the backlight efficiency at all.
Additionally, in the mentioned embodiments a light guide (e.g. an optical fiber) may be placed above the sensor(s) to capture light and transport it to the sensor. Again, this light guide may extend up to or through the reflector foil 581, and even up to the front scattering foil 580 (or optical stack). By approaching the front scattering foil 580, more and more localized sensing of the flux and/or color point is possible.
In
However, undesired angles may still reach the sensor. In
To improve transmission, an embodiment shown in
In this embodiment, the shape and area of the lenses 695 is tuned to the angle of the light 690 that has to be transmitted, in such a way that the focal point is exactly on the pinhole array 693a for the desired angle, and such that the captured flux for each direction is approximately the same.
Due to the fact that incoming light to a sensor will be reflected if the angle is to wide, placing a single sensor in the center of the backlight to measure the light distribution on the scattering foil only a few centimeters away will not work. To solve this issue, the sensor 785 can be placed in one of the corners of the panel tilted at an angle towards the scattering foil 780. The angles of all incoming light will thus be significantly reduced. In front of the sensor a single pinhole or pinhole array can be used to create an infinite depth of focus, as described above in conjunction with
The invention has mainly been described above with reference to a few embodiments. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the invention, as defined by the appended patent claims.
Number | Date | Country | Kind |
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06125998.2 | Dec 2006 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2007/054986 | 12/10/2007 | WO | 00 | 6/9/2009 |