CN113223452A - Characteristic curve-based module Gamma initial value prediction method - Google Patents

Characteristic curve-based module Gamma initial value prediction method Download PDF

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CN113223452A
CN113223452A CN202010071933.5A CN202010071933A CN113223452A CN 113223452 A CN113223452 A CN 113223452A CN 202010071933 A CN202010071933 A CN 202010071933A CN 113223452 A CN113223452 A CN 113223452A
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characteristic curve
value
module
band
gamma
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CN113223452B (en
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徐鹏
唐浩
徐刚
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Wuhan Jingce Electronic Group Co Ltd
Wuhan Jingli Electronic Technology Co Ltd
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Wuhan Jingce Electronic Group Co Ltd
Wuhan Jingli Electronic Technology Co Ltd
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    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/22Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters using controlled light sources
    • G09G3/30Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters using controlled light sources using electroluminescent panels
    • G09G3/32Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters using controlled light sources using electroluminescent panels semiconductive, e.g. using light-emitting diodes [LED]
    • G09G3/3208Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters using controlled light sources using electroluminescent panels semiconductive, e.g. using light-emitting diodes [LED] organic, e.g. using organic light-emitting diodes [OLED]
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/06Adjustment of display parameters
    • G09G2320/0673Adjustment of display parameters for control of gamma adjustment, e.g. selecting another gamma curve
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P90/00Enabling technologies with a potential contribution to greenhouse gas [GHG] emissions mitigation
    • Y02P90/30Computing systems specially adapted for manufacturing

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Abstract

The invention discloses a characteristic curve-based module Gamma initial value prediction method, which comprises the following steps: counting Gamma adjustment data of all binding points of a plurality of sample modules to obtain a standard characteristic curve applicable to all the modules, wherein the standard characteristic curve is used for representing the mapping relation between the characteristic quantity of all the binding points and the Gamma adjustment value; counting the difference value between the actual Gamma adjustment value of one or more preset binding points of the sample module and the predicted Gamma adjustment value of the standard characteristic curve under any band, and compensating the standard characteristic curve by using the difference value to obtain a corrected characteristic curve suitable for the band; and obtaining a Gamma adjustment initial value of the binding point to be detected of the module to be detected according to the correction characteristic curve suitable for the band, correcting the standard characteristic curve by adopting the characteristic quantity to obtain the correction characteristic curve suitable for the band, separating band-to-band variation, and further obtaining a more accurate band-to-band correction model.

Description

Characteristic curve-based module Gamma initial value prediction method
Technical Field
The invention belongs to the field of module Gamma adjustment, and particularly relates to a module Gamma initial value prediction method based on a characteristic curve.
Background
An Organic Light-Emitting Diode (OLED) display is also called an Organic electroluminescent display, and plays a significant role in the display industry. The product has the advantages of self-luminescence, wide viewing angle, high contrast, low power consumption, high reaction rate, full color, simple process and the like compared with a thin film transistor liquid crystal display (TFT-LCD) which is a different type of product. The basic structure of OLED is a sandwich structure composed of a thin and transparent Indium Tin Oxide (ITO) with semiconductor property connected to the positive electrode of power, and another metal cathode, when power is supplied to proper voltage, the positive electrode cavity and cathode charge will combine in the light-emitting layer to generate light, which generates red, green and blue RGB three primary colors according to its formula to form basic color.
On an OLED production line, Gamma correction is an iterative optimization technology for adjusting the brightness and the chromaticity of a module. The aim is to coordinate the register setting controlled by the module with the nonlinear response under the perception of human eyes, so as to achieve the luminous effect of natural transition and distinct hierarchy. Due to various uncontrollable factors in the process of producing the OLED display screen and the difference of molecular arrangement on the same coating, the responses of different modules to electric signals on the same production line are different, so each screen needs respective set parameters, which is the main difficulty of Gamma correction. Currently, the production to the shipment of the OLED must be Gamma-adjusted to ensure that the display effect of the OLED meets the curve of the design requirement, and the standard curve in the industry is Gamma 2.2.
In the Gamma adjustment process, the display requirements must be met for each binding requested by the customer, for which the appropriate binding RGB register values must be obtained. In the process of adjusting the Gamma of each binding point, the initial value of the RGB register is very important, the initial value is accurately adjusted once, and the adjustment is needed for many times in case of inaccuracy, so that the time is spent. The Gamma adjustment of the OLED display screen is to set a group of fixed register values for a binding point of the module to be measured, measure a group of xyz data by using a colorimeter, match the data of the existing adjusted screen by using the group of data, and obtain the register value of the closest screen as the initial value of the module to be measured. The accuracy of the initial value prediction method depends on understanding the device characteristics of the screen and establishing a suitable physical model, but the physical model usually cannot describe the variation caused by the variation of which the process and the device parameters are difficult to control, including the band-to-band variation or the screen-to-screen variation or the batch variation.
Disclosure of Invention
Aiming at the defects or improvement requirements of the prior art, the invention provides a characteristic curve-based module Gamma initial value prediction method, which corrects a standard characteristic curve by adopting characteristic quantity to obtain a corrected characteristic curve suitable for the band, can separate band-to-band variation and further obtain a more accurate band-to-band correction model.
To achieve the above object, according to an aspect of the present invention, there is provided a method for predicting a Gamma initial value of a model based on a characteristic curve, including the steps of:
acquiring standard characteristic curves applicable to all modules, wherein the standard characteristic curves are used for representing the mapping relation between the characteristic quantity of all binding points of the modules and the Gamma adjusting value;
obtaining a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of the sample module and a predicted Gamma adjusting value obtained by a standard characteristic curve under any band, and correcting the standard characteristic curve by using the difference value to obtain a corrected characteristic curve suitable for the band; and obtaining a Gamma adjustment initial value of the binding point to be detected under the band of the module to be detected by using the corrected characteristic curve.
As a further improvement of the present invention, the process of obtaining the standard characteristic curve is to count Gamma adjustment data of all binding points of a plurality of sample modules to obtain the standard characteristic curve applicable to all modules;
or selecting a standard screen, and acquiring the standard characteristic curve by using the mapping relation between the characteristic quantity of all binding points of the standard screen and the Gamma adjusting value.
As a further improvement of the present invention, the standard characteristic curve is corrected by using the difference value to obtain a corrected characteristic curve applicable to the band, specifically:
under any band, a first neural network model is established in a neural network learning mode, the input of the first neural network model is the difference value between the actually converged Gamma adjustment value of one or more preset binding points of the sample module under the band and the predicted Gamma adjustment value of a standard characteristic curve, and the output of the first neural network is a corrected characteristic curve suitable for all the binding points of the band;
and acquiring a corrected characteristic curve suitable for the band through the established first neural network model.
As a further improvement of the invention, the initial value of Gamma adjustment of the binding point to be tested under the band of the module to be tested obtained by utilizing the corrected characteristic curve is replaced by:
acquiring a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of the module to be tested and a predicted Gamma adjusting value obtained by correcting the characteristic curve, and obtaining a prediction model suitable for the module to be tested by using the difference value; and obtaining a Gamma adjustment initial value of the binding point to be detected of the module to be detected by using the prediction model.
As a further improvement of the present invention, the process of obtaining the prediction model of the module to be tested specifically includes:
and acquiring a proportion value of the Gamma adjusting value of the actual convergence of one or more exploration binding points of the module to be tested and a predicted Gamma adjusting value obtained by correcting the characteristic curve, and correcting the corrected characteristic curve by using the proportion value to obtain a prediction model of the module to be tested.
As a further improvement of the present invention, the process of obtaining the prediction model of the module to be tested specifically includes:
the method comprises the steps of respectively obtaining a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of a plurality of sample modules and a predicted Gamma adjusting value obtained by correcting a characteristic curve, obtaining a prediction model suitable for the plurality of sample modules by using the difference value, and taking the prediction model as the prediction model suitable for the module to be tested.
As a further improvement of the method, a difference value between the actually converged Gamma adjustment value of one or more preset binding points of the module to be tested and the predicted Gamma adjustment value obtained by correcting the characteristic curve is obtained, and a prediction model suitable for the module to be tested is obtained by utilizing the difference value; the step of obtaining the initial Gamma adjustment value of the binding point to be detected of the module to be detected by using the prediction model specifically comprises the following steps:
establishing a second neural network, and acquiring a Gamma adjustment initial value of a binding point to be detected of the module to be detected by using a second neural network model, wherein the Gamma adjustment initial value specifically comprises the following steps:
and the difference value between the Gamma adjustment value of the actual convergence of one or more exploration binding points of the module to be tested under the band and the Gamma adjustment initial value obtained by utilizing the corrected characteristic curve applicable to the band is used as the input of the second neural network, and the Gamma adjustment initial value of the binding points to be tested of the module to be tested is output.
As a further improvement of the present invention, the training process of the second neural network specifically includes:
when a second neural network model is trained, the input of the second neural network is the difference value between the actual converged Gamma adjustment value of one or more preset binding points of a certain sample module under the band and the Gamma adjustment initial value obtained by utilizing the corrected characteristic curve applicable to the band, and the Gamma adjustment initial value of the binding point to be detected of the certain sample module is output.
As a further improvement of the invention, the initial value of Gamma adjustment of the binding point to be tested under the band of the module to be tested obtained by utilizing the corrected characteristic curve is replaced by:
establishing a search list, wherein the search list is used for storing difference values between actual characteristic quantities of part or all of the exploration binding points of all the sample modules and predicted characteristic quantities obtained according to a corrected characteristic curve applicable to the band;
and acquiring difference values between actual characteristic quantities of a plurality of exploration binding points of the module to be detected and predicted characteristic quantities obtained according to the corrected characteristic curve, inputting the difference values into a lookup list, searching a sample module which is closest to the input value on the corresponding binding point in the lookup list, and taking gamma adjustment data of the closest sample module as gamma adjustment prediction data of the module to be detected.
As a further improvement of the present invention, the characteristic quantity is luminance or chromaticity.
As a further improvement of the invention, the Gamma adjustment value is the adjustment voltage or the RGB register value, or the proportion of the RGB register or the voltage when reaching the white picture.
As a further improvement of the present invention, for the PWM mode adjustment or the non-normal mode adjustment, the characteristic quantity of the binding point is normalized by the normalization factor, so that the adjustment data of all binding points in the PWM mode or the non-normal mode can be characterized by the standard characteristic curve or the corrected characteristic curve.
As a further improvement of the invention, the normalization factor of the PWM mode is the duty ratio, and the normalization factor of the non-normal mode is the equivalent duty ratio obtained by mathematical fitting or neural network method.
To achieve the above object, according to another aspect of the present invention, there is provided a terminal device comprising at least one processing unit, and at least one memory unit, wherein the memory unit stores a computer program which, when executed by the processing unit, causes the processing unit to perform the steps of the above method.
To achieve the above object, according to another aspect of the present invention, there is provided a computer-readable medium storing a computer program executable by a terminal device, the program, when executed on the terminal device, causing the terminal device to perform the steps of the above method.
Generally, compared with the prior art, the above technical solution conceived by the present invention has the following beneficial effects:
according to the characteristic curve-based module Gamma initial value prediction method, the characteristic quantity is adopted to correct the standard characteristic curve to obtain a corrected characteristic curve suitable for the band, band-to-band variation can be separated, and a relatively accurate band-to-band correction model can be obtained.
According to the characteristic curve-based module Gamma initial value prediction method, the variation of the screen can be improved through characteristic value measurement on the limited binding points, the accuracy of initial value prediction is improved, and after the screen-to-screen variation is corrected by adopting the characteristic quantity, the screen-to-screen variation and the band-to-band variation can be partially separated, so that a more accurate band-to-band correction model is obtained.
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FIG. 1 is a schematic diagram of a method for predicting an initial Gamma value of a model based on a characteristic curve according to an embodiment of the present invention;
FIG. 2 is a diagram illustrating the deviation between each binding point data and the standard characteristic curve in the PWM mode according to an embodiment of the present invention;
FIG. 3 is a diagram illustrating deviation between binding data and a standard characteristic curve after normalization in a PWM mode according to an embodiment of the present invention;
FIG. 4 is a diagram illustrating the deviation of each binding point data from the standard characteristic curve in Normal mode according to an embodiment of the present invention;
FIG. 5 is a schematic illustration of multi-band bind point data versus standard signature curve deviation for an embodiment of the present invention;
FIG. 6 is a diagram illustrating the minimum shift of the modified characteristic curve at low luminance according to an embodiment of the present invention.
Detailed Description
In order to make the objects, technical solutions and advantages of the present invention more apparent, the present invention is described in further detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention.
In addition, the technical features involved in the embodiments of the present invention described below may be combined with each other as long as they do not conflict with each other. The present invention will be described in further detail with reference to specific embodiments.
Fig. 1 is a schematic diagram of a model Gamma initial value prediction method based on a characteristic curve according to an embodiment of the present invention. As shown in fig. 1, a method for predicting an initial Gamma value of a model based on a characteristic curve includes the following steps:
acquiring standard characteristic curves applicable to all modules, wherein the standard characteristic curves are used for representing the mapping relation between the characteristic quantity of all binding points of the modules and the Gamma adjusting value;
obtaining a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of the sample module and a predicted Gamma adjusting value obtained by a standard characteristic curve under any band, and correcting the standard characteristic curve by using the difference value to obtain a corrected characteristic curve suitable for the band; and obtaining a Gamma adjustment initial value of the binding point to be detected under the band of the module to be detected by utilizing the corrected characteristic curve.
As a preferred embodiment, the process of obtaining the standard characteristic curve is to count Gamma adjustment data of all binding points of a plurality of sample modules to obtain the standard characteristic curve applicable to all the modules;
or selecting a standard screen, and acquiring the standard characteristic curve by using the mapping relation between the characteristic quantity of all binding points of the standard screen and the Gamma adjusting value.
The standard characteristic curve can be obtained by using a neural network or a numerical fitting manner, as an example, the standard characteristic curve of a certain sample module can be obtained by using the numerical fitting or the neural network, the parameter of the standard characteristic curve of each sample module is obtained, the parameters of the standard characteristic curves of all the sample modules are averaged to obtain the standard characteristic curve, and the standard characteristic curve suitable for all the modules can be obtained by using other better fitting algorithms or by using neural network learning. As a preferred embodiment, the characteristic amount is luminance or chrominance; the Gamma adjusting value is adjusting voltage or RGB register value, or the proportion of RGB register or voltage when reaching white picture.
As a preferred embodiment, a mathematical function mapping relation exists for all binding points of each DC mode band of the normal mode to R or G or B register values which meet the specification requirements, namely the standard characteristic curve. Fig. 2 and fig. 3 are schematic diagrams of binding data in the PWM mode and deviations from the standard characteristic curve after normalization in the normal mode according to the embodiment of the present invention. As shown in fig. 2 and 3, after the duty ratio of the PWM mode (one of the normal modes) is used as the normalization factor, the binding points of the bands of the PWM mode can also be represented by the same characteristic curve. Equivalent duty cycles can be obtained by using a mathematical fitting or neural network method for other non-normal modes, so that the regulation data of all binding points in the non-normal modes can also be represented by a first-order approximation by using a standard characteristic curve. FIG. 4 is a diagram illustrating the deviation of each binding point data from the standard characteristic curve in Normal mode according to an embodiment of the present invention. As shown in fig. 4, Vr, Vg, Vb are RGB register voltage values corresponding to the white specification, and a low voltage corresponds to a high luminance, and for each binding point satisfying the luminance and chrominance specifications, the RGB register values have a corresponding proportional relationship.
For each binding point of the screen, the corresponding relation between the brightness and the chromaticity and the driving voltage or the register value exists in a mathematical model or a standard characteristic curve which can be described by the physical characteristics of the device, but the accuracy of the standard characteristic curve is usually not enough to give a good enough initial value prediction. As a further improvement method, a learning sample library is established, a neural network or machine learning model is established according to the data of the learning sample library, the characteristic curves are corrected, a more accurate model, particularly the band-to-band variation, is obtained, and the secondary approximate characterization is obtained. However, in some cases, especially when the screen-to-screen variation is large, the accuracy of the result of this second-order approximation as an initial value prediction still needs to be further improved.
As a preferable scheme, "obtaining the initial value of Gamma adjustment of the binding point to be measured under the band of the module to be measured by using the corrected characteristic curve" may be replaced by:
acquiring a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of the module to be tested and a predicted Gamma adjusting value obtained by correcting the characteristic curve, and obtaining a prediction model suitable for the module to be tested by using the difference value; and obtaining a Gamma adjustment initial value of the binding point to be detected of the module to be detected by using the prediction model.
As a preferred scheme, the process of obtaining the prediction model of the module to be tested specifically includes:
and acquiring a proportion value of the Gamma adjusting value of the actual convergence of one or more exploration binding points of the module to be tested and a predicted Gamma adjusting value obtained by correcting the characteristic curve, and correcting the corrected characteristic curve by using the proportion value to obtain a prediction model of the module to be tested.
As a preferred scheme, the process of obtaining the prediction model of the module to be tested specifically includes:
the method comprises the steps of respectively obtaining a difference value between a Gamma adjusting value of actual convergence of one or more preset binding points of a plurality of sample modules and a predicted Gamma adjusting value obtained by correcting a characteristic curve, obtaining a prediction model suitable for the plurality of sample modules by using the difference value, and taking the prediction model as the prediction model suitable for the module to be tested.
As an example, the parameters of the modified characteristic curve applicable to the band may also be established by curve fitting, and the parameters of the modified characteristic curve applicable to the band may be modified by using a difference between an actual Gamma adjustment value and a predicted Gamma adjustment value of one or more preset binding points of the sample module, so as to obtain the modified characteristic curve applicable to the band.
FIG. 5 is a graphical illustration of multi-band binding data versus standard signature curve deviation for an embodiment of the present invention. As shown in FIG. 5, the band-to-band variation causes a systematic deviation of the binding points for each band from the standard characteristic curve, where bands 1-5 are DC bands in normal mode and bands 6-11 are PWM bands after normalization. By adopting polynomial fitting, the difference between the fitting parameter of each band and the standard characteristic curve can be found, so that the fitting result of each band can be used as the corrected characteristic curve of the band, therefore, on the basis of the standard characteristic curve, the brightness of each band in one or more screens in a sample library is respectively fitted to the green register value, and the result is compared with the standard characteristic curve to obtain the corrected characteristic curve of each band. When multiple screens exist, the average value of the parameters obtained for different screens can be used as the parameter for correcting the characteristic curve. The standard deviation of these parameters can be used as a measure of screen-to-screen variation. Therefore, by compensating the band and the band variation, a more accurate prediction model, namely a corrected characteristic curve suitable for the band can be obtained.
For band-to-band variation, a modified characteristic curve can also be obtained by establishing a first neural network model. For the band-to-band variation shown in fig. 5, a multi-slice training sample module is used to measure the corresponding relationship between the brightness and the green voltage at all the binding points of each band, and thus the first neural network model is trained, and the network parameters are adjusted to minimize the fitting error. When the first neural network model is used, the first neural network outputs the corrected value of the standard characteristic curve on the corresponding binding point on the band after the band number and the binding point number are input to the module to be detected, so that the corrected characteristic curve is obtained.
Table 1 is a schematic of the fitting deviation values of the green voltage and the green register for various adjustment modes according to the embodiment of the present invention. Columns 2, 3, 4 and 5 in table 1 respectively show the cases corresponding to fig. 5, which respectively correspond to the DC mode in the normal mode, the normal-DC + PWM mode but not normalized, the normal-DC + PWM mode is normalized, and then the comparison value of the fitting accuracy after correcting the band-to-band variation by using the neural network, column 2 shows the fitting average deviation value of the corresponding green voltage, column 3 shows the fitting average deviation value of the corresponding green register, which corresponds to the normal-DC mode, after adding the PWM mode, after normalizing the PWM mode, and finally the fitting result after performing the band-to-band compensation on the normalized result by using the neural network method. It can be seen that both the normalization and the fitting accuracy after neural network correction are significantly improved.
TABLE 1 schematic table of fitting deviation values of green voltage and green register under various adjustment modes of embodiments of the present invention
Figure BDA0002377516870000081
FIG. 6 is a diagram illustrating the minimum shift of the modified characteristic curve at low luminance according to an embodiment of the present invention. As shown in fig. 6, the number of samples is about 100, and the curves obtained by fitting the PWM bands of eight different bright points are plotted, and the results are approximately on a straight line, thereby confirming that there is an approximately linear shift of the characteristic curves obtained for the different bands, and the shift has a great influence on the prediction accuracy of the low bright band. The voltage value V0, j (j ═ 100nits,60nits, 2nits) at the minimum point of the fitted curve to the PWM band in fig. 5 shifts toward the low voltage direction as the luminance decreases. The drift amount may vary from screen to screen, and is used as a characteristic amount of screen to screen variation. This linear relationship can be used either to predict the correction for low brightness, giving a correction characteristic for each band-to-band.
When the screen-to-screen variation is larger than the band-to-band variation, the accuracy of the obtained correction characteristic curve is still not satisfactory enough. Thus, screen-to-screen variations need to be predicted and corrected.
As a preferred scheme, for the module to be detected, the characteristic quantity is measured at a plurality of exploration binding points, the difference value of the Gamma adjustment initial value of the binding point to be detected of the module to be detected is obtained according to the actual measurement value and the correction characteristic curve suitable for the binding point, and the correction value of the prediction initial value of the correction characteristic curve at other binding points of the screen is given by adopting a neural network model. In the multi-sheet training sample module, the corresponding relation between the characteristic value and the gamma adjusting value is measured, and a second neural network is established by training. When the second neural network is used, the characteristic quantity measured values of a plurality of exploration binding points on the module to be measured are input, the corrected values of the standard characteristic curve or the corrected characteristic curve on all binding points or the next binding point to be measured are output and used as third-order approximation to realize the Gamma adjustment initial value prediction of all binding points to be measured of the module to be measured.
As an example, for each band of each module under test, the tie point between two end points is taken as a search tie point, and the relationship between the luminance and chrominance convergence value and the corresponding RGB register voltage is measured. And searching the difference between the actually measured corresponding relation on the binding points and the standard characteristic curve as the input of a second neural network model, and obtaining the deviation value of each binding point on each band corresponding to the screen to the standard characteristic curve so as to obtain the predicted initial values of the binding points. As shown in table 2, the average error value of the fit is also significantly reduced after the band-to-band and screen-to-screen variations are thus corrected.
Table 2 schematic diagram of the post-deviation value corrected by neural network according to the embodiment of the present invention
Figure BDA0002377516870000091
For the module to be detected, the characteristic quantity is measured on a plurality of exploration binding points, the difference value of the Gamma adjustment initial value of the binding point to be detected of the module to be detected is obtained according to the actual measurement value and the correction characteristic curve suitable for the binding point, and the corrected value of the prediction initial value of the correction characteristic curve on other binding points of the screen is given by adopting a list searching method. In the multi-slice training sample module, the corresponding relationship between the eigenvalue and gamma adjustment value at all binding points is measured and stored in a list form. When the list is used, the characteristic quantity measured values of a plurality of exploration binding points on the module to be tested are input, the screen with the closest corresponding relation between the characteristic value and the Gamma adjusting value on the exploration binding points is searched in the list, and the corrected value of the standard characteristic curve or the corrected characteristic curve of the screen on all binding points or the next binding point to be measured from the mapping relation is output as third order approximation to realize the Gamma adjusting initial value prediction of all binding points to be tested of the module to be tested.
As a preferable scheme, the initial Gamma adjustment value of the binding point to be measured of the module to be measured is obtained according to the corrected characteristic curve applicable to the band and is replaced by:
establishing a search list for storing difference values between actual characteristic quantities of a plurality of exploration binding points of the sample module and predicted characteristic quantities obtained according to a corrected characteristic curve applicable to the band;
and acquiring difference values between actual characteristic quantities of a plurality of exploration binding points of the module to be tested and predicted characteristic quantities obtained according to the corrected characteristic curve applicable to the band, inputting the difference values into a lookup list to obtain a sample module with the closest difference value, and taking gamma adjustment data of the sample module with the closest difference value as gamma adjustment prediction data of the module to be tested.
It will be understood by those skilled in the art that the foregoing is only a preferred embodiment of the present invention, and is not intended to limit the invention, and that any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the scope of the present invention.

Claims (15)

1. A module Gamma initial value prediction method based on a characteristic curve is characterized by comprising the following steps:
acquiring a standard characteristic curve applicable to all modules, wherein the standard characteristic curve is used for representing the mapping relation between the characteristic quantity of all binding points of the modules and a Gamma adjusting value;
acquiring a difference value between a Gamma adjustment value of actual convergence of one or more preset binding points of a sample module and a predicted Gamma adjustment value obtained by a standard characteristic curve under any band, and correcting the standard characteristic curve by using the difference value to obtain a corrected characteristic curve suitable for the band; and obtaining a Gamma adjustment initial value of the binding point to be detected under the band of the module to be detected by utilizing the corrected characteristic curve.
2. The method of claim 1, wherein the standard curve is obtained by counting Gamma adjustment data of all binding points of a plurality of sample modules to obtain a standard curve for all modules;
or selecting a standard screen, and acquiring the standard characteristic curve by using the mapping relation between the characteristic quantity of all binding points of the standard screen and the Gamma adjusting value.
3. The method according to claim 1, wherein the step of correcting the standard characteristic curve by using the difference value to obtain a corrected characteristic curve applicable to the band comprises:
under any band, establishing a first neural network model in a neural network learning mode, wherein the input of the first neural network model is the difference value between the Gamma adjusting value of one or more preset binding points of a sample module under the band, which is actually converged, and the predicted Gamma adjusting value of a standard characteristic curve, and the output of the first neural network is a corrected characteristic curve suitable for all the binding points of the band;
and acquiring a corrected characteristic curve suitable for the band through the established first neural network model.
4. The method for predicting the initial Gamma value of the module based on the characteristic curve as claimed in any one of claims 1 to 3, wherein the step of obtaining the initial Gamma adjustment value of the binding point to be measured under the band of the module to be measured by using the corrected characteristic curve is replaced by the step of:
obtaining a difference value between the Gamma adjusting value of the actual convergence of one or more preset binding points of the module to be tested and the predicted Gamma adjusting value obtained by correcting the characteristic curve, and obtaining a prediction model suitable for the module to be tested by using the difference value; and obtaining a Gamma adjustment initial value of the binding point to be detected of the module to be detected by using the prediction model.
5. The method for predicting the initial Gamma value of the module based on the characteristic curve as claimed in claim 4, wherein the obtaining process of the prediction model of the module to be tested specifically comprises:
and acquiring a ratio of the practically converged Gamma adjustment value of one or more exploration binding points of the module to be tested and the predicted Gamma adjustment value obtained by correcting the characteristic curve, and correcting the corrected characteristic curve by using the ratio to obtain a prediction model of the module to be tested.
6. The method for predicting the initial Gamma value of the module based on the characteristic curve according to claim 4, wherein the obtaining process of the prediction model of the module to be tested specifically comprises:
and respectively obtaining the difference value between the actually converged Gamma adjustment value of one or more preset binding points of the plurality of sample modules and the predicted Gamma adjustment value obtained by correcting the characteristic curve, obtaining a prediction model suitable for the plurality of sample modules by using the difference value, and taking the prediction model as the prediction model suitable for the module to be tested.
7. The method for predicting the initial Gamma value of the characteristic curve-based module according to claim 4, wherein the step of obtaining the difference between the Gamma adjustment value of the actual convergence of one or more preset binding points of the module to be predicted and the Gamma adjustment value of the correction characteristic curve is performed to obtain the prediction model suitable for the module to be predicted; the step of obtaining the initial Gamma adjustment value of the binding point to be detected of the module to be detected by using the prediction model specifically comprises the following steps:
establishing a second neural network, and acquiring a Gamma adjustment initial value of a binding point to be detected of the module to be detected by using a second neural network model, wherein the Gamma adjustment initial value specifically comprises the following steps:
and taking a difference value between the Gamma adjustment value of the actual convergence of one or more exploration binding points of the module to be detected under the band and the Gamma adjustment initial value obtained by utilizing the corrected characteristic curve applicable to the band as the input of a second neural network, and outputting the Gamma adjustment initial value as the Gamma adjustment initial value of the binding point to be detected of the module to be detected.
8. The method of claim 7, wherein the training process of the second neural network specifically comprises:
when a second neural network model is trained, the input of the second neural network is a difference value between a Gamma adjustment value of actual convergence of one or more preset binding points of a certain sample module under the band and a Gamma adjustment initial value obtained by utilizing a correction characteristic curve applicable to the band, and the Gamma adjustment initial value of the binding point to be detected of the certain sample module is output.
9. The method for predicting the initial Gamma value of the module based on the characteristic curve as claimed in any one of claims 1 to 3, wherein the step of obtaining the initial Gamma adjustment value of the binding point to be measured under the band of the module to be measured by using the corrected characteristic curve is replaced by the step of:
establishing a search list, wherein the search list is used for storing difference values between actual characteristic quantities of part or all of the searched binding points of all the sample modules and predicted characteristic quantities obtained according to the corrected characteristic curve applicable to the band;
and acquiring difference values between actual characteristic quantities of a plurality of exploration binding points of the module to be detected and predicted characteristic quantities obtained according to the corrected characteristic curve, inputting the difference values into a lookup list, searching a sample module which is closest to the input value on the corresponding binding point in the lookup list, and taking gamma adjustment data of the closest sample module as gamma adjustment prediction data of the module to be detected.
10. The method according to any one of claims 1-9, wherein the characteristic quantity is luminance or chrominance.
11. The method as claimed in any one of claims 1 to 9, wherein the Gamma adjustment value is an adjustment voltage or an RGB register value, or a ratio of RGB register or voltage when reaching a white picture.
12. The method for predicting initial Gamma values based on characteristic curves according to any one of the claims 1 to 9, wherein the normalization factor is used to normalize the characteristic quantities of the binding points for PWM mode adjustment or non-normal mode adjustment, so that the adjustment data of all binding points in PWM mode or non-normal mode can be characterized by a standard characteristic curve or a modified characteristic curve.
13. The method of claim 12, wherein the normalization factor in the PWM mode is a duty cycle, and the normalization factor in the non-normal mode is an equivalent duty cycle obtained by a mathematical fitting or a neural network method.
14. A terminal device, comprising at least one processing unit and at least one memory unit, wherein the memory unit stores a computer program which, when executed by the processing unit, causes the processing unit to carry out the steps of the method according to any one of claims 1 to 13.
15. A computer-readable medium, in which a computer program is stored which is executable by a terminal device, and which, when run on the terminal device, causes the terminal device to carry out the steps of the method of any one of claims 1 to 13.
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