IP Library Granted Patent US 10,276,095
Granted Patent B2
US 10,276,095 · App. 15/504,848 · Granted Apr 30, 2019

Display device and method of driving display device

Inventor: Tomoyuki Maeda (Tokyo, JP)
Assignee: JOLED INC.
G09G3/3233G09G3/3266H01L51/50G09G2300/0861G09G2310/0251G09G2310/0262G09G2320/029G09G2320/0233G09G2320/043G09G2320/045G09G2320/0693G09G2330/12G09G2360/16H01L51/0031
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Quick Facts
Patent No.
US 10,276,095
App. No.
15/504,848
Granted
Apr 30, 2019
Kind
B2
Abstract

A display device includes: a display unit including display pixels each of which includes: an organic EL element that emits light in response to a drive current; and a drive transistor that supplies a drive current corresponding to a magnitude of a luminance signal to the organic EL element; a measurement pixel located outside the display unit including: a measurement element composed of an organic EL element; and a measurement transistor that supplies a drive current to the measurement element; a current measurement unit that measures a current of the measurement pixel in a predetermined degradation state; a deviation calculation unit that calculates a deviation between a theoretical first correction amount of the luminance signal and a second correction amount of the luminance signal calculated from the measured current; and a luminance signal correction unit that corrects a theoretical third correction amount of the luminance signal of the display pixel.

Claims (40)

1. A display device comprising:

a display including a plurality of display pixels each of which includes: an organic EL element that emits light in response to a supplied current; and a drive transistor that supplies a drive current corresponding to a magnitude of a luminance signal to the organic EL element;

a measurement pixel located outside the display and including: a measurement element composed of an organic EL element; and a measurement transistor that supplies a current corresponding to a magnitude of a measurement signal to the measurement element;

a current measurement unit configured to measure a current flowing through the measurement pixel in a predetermined degradation state;

a deviation calculation unit configured to calculate, for the measurement pixel in the predetermined degradation state, a deviation between a theoretically calculated first correction amount of the luminance signal and a second correction amount of the luminance signal calculated from the current measured by the current measurement unit; and

a luminance signal correction unit configured to correct a theoretically calculated third correction amount of the luminance signal, using a result of calculating the deviation by the deviation calculation unit,

wherein the deviation calculation unit is configured to:

perform a first deviation calculation process of calculating, for the measurement transistor in the degradation state, a first deviation between a first gate voltage calculated theoretically as a gate voltage necessary for obtaining a desired current and a second gate voltage calculated from the current measured by the current measurement unit as a gate voltage necessary for obtaining the desired current;

perform a second deviation calculation process of calculating, for the measurement element in the degradation state, a second deviation between a first current calculated theoretically as a current necessary for obtaining a desired light emission amount and a second current calculated from the current measured by the current measurement unit as a current necessary for obtaining the desired light emission amount and

calculate the deviation by combining the first deviation and the second deviation.

2. The display device according to claim 1 ,

wherein the current measurement unit is configured to adjust a source-drain voltage of the measurement transistor in the measurement pixel to cause the measurement transistor to operate in a saturated region, and measure the current flowing through the measurement pixel.

3. The display device according to claim 1 ,

wherein the current measurement unit is configured to adjust a source-drain voltage of the measurement transistor in the measurement pixel to cause the measurement transistor to operate in a linear region, and measure the current flowing through the measurement pixel.

4. The display device according to claim 1 ,

wherein the measurement pixel is located between a scan line drive circuit that drives a scan line for supplying a drive signal to a gate terminal of the drive transistor in each of the display pixels and the display pixels.

5. The display device according to claim 1 ,

wherein the display includes a plurality of blocks each of which includes a plurality of display pixels,

the measurement pixel is provided for each of the plurality of blocks, in proximity to a corresponding block, and

the deviation calculation unit is configured to calculate, for each of the plurality of blocks, the deviation using the current of the measurement pixel provided for the corresponding block.

6. A method of driving a display device, the display device including: a display including a plurality of display pixels each of which includes: an organic EL element that emits light in response to a supplied current; and a drive transistor that supplies a drive current corresponding to a magnitude of a luminance signal to the organic EL element; and a measurement pixel located outside the display and including: a measurement element composed of an organic EL element; and a measurement transistor that supplies a current corresponding to a magnitude of a measurement signal to the measurement element, the method comprising:

measuring a current flowing through the measurement pixel in a predetermined degradation state;

calculating, for the measurement pixel in the degradation state, a deviation between a theoretically calculated first correction amount of the luminance signal and a second correction amount of the luminance signal calculated from the current measured in the measuring; and

correcting a theoretically calculated third correction amount of the luminance signal, using a result of the deviation calculated in the calculating,

wherein the calculating the deviation includes:

performing a first deviation calculation process of calculating, for the measurement transistor in the degradation state, a first deviation between a first gate voltage calculated theoretically as a gate voltage necessary for obtaining a desired current and a second gate voltage calculated from the current measured in the measuring as a gate voltage necessary for obtaining the desired current;

performing a second deviation calculation process of calculating, for the measurement element in the degradation state, a second deviation between a first current calculated theoretically as a current necessary for obtaining a desired light emission amount and a second current calculated from the current measured in the measuring as a current necessary for obtaining the desired light emission amount; and

calculating the deviation by combining the first deviation and the second deviation.

7. A display device comprising:

a display including a plurality of display pixels each of which includes: an organic EL element that emits light in response to a supplied current; and a drive transistor that supplies a drive current corresponding to a magnitude of a luminance signal to the organic EL element;

a measurement pixel located outside the display and including: a measurement element composed of an organic EL element; and a measurement transistor that supplies a current corresponding to a magnitude of a measurement signal to the measurement element;

a processor; and

a memory including a program that, when executed by the processor, causes the processor to perform operations including:

measuring a current flowing through the measurement pixel in a predetermined degradation state;

calculating, for the measurement pixel in the degradation state, a deviation between a theoretically calculated first correction amount of the luminance signal and a second correction amount of the luminance signal calculated from the current measured in the measuring; and

correcting a theoretically calculated third correction amount of the luminance signal, using a result of the deviation calculated in the calculating,

wherein the calculating the deviation includes:

performing a first deviation calculation process of calculating, for the measurement transistor in the degradation state, a first deviation between a first gate voltage calculated theoretically as a gate voltage necessary for obtaining a desired current and a second gate voltage calculated from the current measured in the measuring as a gate voltage necessary for obtaining the desired current;

performing a second deviation calculation process of calculating, for the measurement element in the degradation state, a second deviation between a first current calculated theoretically as a current necessary for obtaining a desired light emission amount and a second current calculated from the current measured in the measuring as a current necessary for obtaining the desired light emission amount; and

calculating the deviation by combining the first deviation and the second deviation.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 18, 2025
From: JDI DESIGN AND DEVELOPMENT G.K.
To: MAGNOLIA BLUE CORPORATION
Reel/Frame 072039/0656 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2024
From: JOLED, INC.
To: JDI DESIGN AND DEVELOPMENT G.K.
Reel/Frame 066382/0619 →
CORRECTION BY AFFIDAVIT FILED AGAINST REEL/FRAME 063396/0671 Recorded Jun 12, 2023
From: JOLED, INC.
To: JOLED, INC.
Reel/Frame 064067/0723 →
SECURITY INTEREST Recorded Apr 20, 2023
From: JOLED, INC.
To: INCJ, LTD.
Reel/Frame 063396/0671 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 17, 2017
From: MAEDA, TOMOYUKI
To: JOLED INC.
Reel/Frame 041287/0207 →
Priority Claims (1)
JP 2014-168792 · Aug 21, 2014 · national
Continuity (1)
Related Publication 20170270855A1 · Sep 21, 2017