IP Library Granted Patent US 12,614,525
Granted Patent B2
US 12,614,525 · App. 18/798,005 · Granted Apr 28, 2026

Demura tuning for 2D backlight systems

Inventors: Atul Sharma (Tokyo, JP); Takashi Nose (Kanagawa, JP); Hirobumi Furihata (Tokyo, JP); Akio Sugiyama (Tokyo, JP)
Assignee: SYNAPTICS INCORPORATED
G09G3/3426G09G2320/0233G09G2320/0693G09G2360/145G09G2360/16
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Quick Facts
Patent No.
US 12,614,525
App. No.
18/798,005
Granted
Apr 28, 2026
Kind
B2
Abstract

A method for demura calibration is provided. The method includes acquiring a plurality of brightness maps of a plurality of light sources of a two-dimensional backlight system for a plurality of test patterns, each test pattern indicating each of the plurality of light sources to be turned on or off. Each of the plurality of light sources is turned on in only one of the plurality of test patterns. The plurality of brightness maps indicate brightness levels of the plurality of light sources for the plurality of test patterns. The method further includes producing a cumulative brightness map by adding together the plurality of brightness maps. The method further includes generating demura compensation factors for the plurality of light sources based on the cumulative brightness map.

Claims (74)

1 . A method, comprising:

acquiring a plurality of brightness maps of a plurality of light sources of a two-dimensional backlight system for a plurality of test patterns, each test pattern indicating each of the plurality of light sources to be turned on or off, each of the plurality of light sources being turned on in only one of the plurality of test patterns, wherein the plurality of brightness maps indicate brightness levels of the plurality of light sources for the plurality of test patterns;

producing a cumulative brightness map by adding together the plurality of brightness maps; and

generating demura compensation factors for the plurality of light sources based on the cumulative brightness map,

wherein the plurality of test patterns includes:

a first test pattern in which a first set of light sources of the plurality of light sources are turned on and a first remaining set of light sources of the plurality of light sources are turned off, and

a second test pattern in which a second set of light sources of the plurality of light sources are turned on and a second remaining set of light sources of the plurality of light sources are turned off, wherein the first and second sets of light sources share no light source.

2 . The method of claim 1 , wherein

each light source of the first set of light sources is adjacent to only light sources of the first remaining set of light sources.

3 . The method of claim 2 , wherein the plurality of test patterns further includes:

a third test pattern in which a third set of light sources of the plurality of light sources are turned on; and

a fourth test pattern in which a fourth set of light sources of the plurality of light sources are turned on,

wherein the first, second, third, and fourth sets of light sources share no light source.

4 . The method of claim 3 , wherein each of the plurality of light sources belongs to one of the first, second, third, and fourth set of light sources.

5 . The method of claim 3 , wherein the first set of light sources comprises a first light source,

wherein the second set of light sources comprises a second light source horizontally adjacent to the first light source,

wherein the third set of light sources comprises a third light source vertically adjacent to the first light source, and

wherein the fourth set of light sources comprises a fourth light source diagonally adjacent to the first light source.

6 . The method of claim 1 , wherein acquiring the plurality of brightness maps of the plurality of light sources comprises:

capturing a plurality of images of a display panel while the display panel is illuminated by the plurality of light sources with the plurality of test patterns; and

generating the plurality of brightness maps of the plurality of light sources based on the plurality of images.

7 . The method of claim 1 , further comprising generating a directivity filter that represents light diffusion characteristics of the plurality of light sources,

wherein generating the demura compensation factors for the plurality of light sources is further based on the directivity filter.

8 . The method of claim 7 , wherein generating the directivity filter comprises:

acquiring a first luminance distribution for a fifth test pattern in which two adjacent light sources of the plurality of light sources are turned on;

acquiring a second luminance distribution for a sixth test pattern in which one of the two adjacent light sources is turned on;

acquiring a third luminance distribution for a seventh test pattern in which the other of the two adjacent light sources is turned on; and

generating the directivity filter based on the first, second, and third luminance distributions.

9 . The method of claim 7 , wherein generating the demura compensation factors for the plurality of light sources comprises:

applying the demura compensation factors and the directivity filter to the cumulative brightness map to generate a compensated brightness map; and

modifying the demura compensation factors based on the compensated brightness map.

10 . A calibration system, comprising:

a processor; and

a storage device configured to store computer-executable instructions which when executed cause the processor to:

acquire a plurality of brightness maps of a plurality of light sources of a two-dimensional backlight system for a plurality of test patterns, each test pattern indicating each of the plurality of light sources to be turned on or off, each of the plurality of light sources being turned on in only one of the plurality of test patterns,

wherein the plurality of brightness maps indicate brightness levels of the plurality of light sources for the plurality of test patterns;

produce a cumulative brightness map by adding together the brightness maps; and

generate demura compensation factors for the plurality of light sources based on the cumulative brightness map,

wherein the plurality of test patterns includes:

a first test pattern in which a first set of light sources of the plurality of light sources are turned on and a first remaining set of light sources of the plurality of light sources are turned off, and

a second test pattern in which a second set of light sources of the plurality of light sources are turned on and a second remaining set of light sources of the plurality of light sources are turned off, wherein the first and second sets of light sources share no light source.

11 . The calibration system of claim 10 , wherein

each light source of the first set of light sources is adjacent to only light sources of the first remaining set of light sources.

12 . The calibration system of claim 11 , wherein the plurality of test patterns further includes:

a third test pattern in which a third set of light sources of the plurality of light sources are turned on; and

a fourth test pattern in which a fourth set of light sources of the plurality of light sources are turned on, and

wherein the first, second, third, and fourth sets of light sources share no light source.

13 . The calibration system of claim 12 , wherein the first set of light sources comprises a first light source,

wherein the second set of light sources comprises a second light source horizontally adjacent to the first light source,

wherein the third set of light sources comprises a third light source vertically adjacent to the first light source, and

wherein the fourth set of light sources comprises a fourth light source diagonally adjacent to the first light source.

14 . The calibration system of claim 10 , further comprising an imaging device configured to capture a plurality of images of a display panel while the display panel is illuminated by the plurality of light sources with the plurality of test patterns,

wherein acquiring the plurality of brightness maps of the plurality of light sources comprises generating the plurality of brightness maps of the plurality of light sources based on the plurality of images.

15 . The calibration system of claim 10 , wherein the computer-executable instructions when executed further cause the processor to generate a directivity filter that represents light diffusion characteristics of the plurality of light sources, and

wherein generating the demura compensation factors for the plurality of light sources is further based on the directivity filter.

16 . A non-transitory tangible computer-readable storage medium that stores computer-executable instructions which when executed cause a processor to:

acquire a plurality of brightness maps of a plurality of light sources of a two-dimensional backlight system for a plurality of test patterns, each test pattern indicating each of the plurality of light sources to be turned on or off, each of the plurality of light sources being turned on in only one of the plurality of test patterns, wherein the plurality of brightness maps indicate brightness levels of the plurality of light sources for the plurality of test patterns;

produce a cumulative brightness map by adding together the brightness maps; and

generate demura compensation factors for the plurality of light sources based on the cumulative brightness map,

wherein the plurality of test patterns includes:

a first test pattern in which a first set of light sources of the plurality of light sources are turned on and a first remaining set of light sources of the plurality of light sources are turned off, and

a second test pattern in which a second set of light sources of the plurality of light sources are turned on and a second remaining set of light sources of the plurality of light sources are turned off, wherein the first and second sets of light sources share no light source.

17 . The non-transitory tangible computer-readable storage medium of claim 16 , wherein

each light source of the first set of light sources is adjacent to only light sources of the first remaining set of light sources.

18 . The non-transitory tangible computer-readable storage medium of claim 17 , wherein the plurality of test patterns further includes:

a third test pattern in which a third set of light sources of the plurality of light sources are turned on; and

a fourth test pattern in which a fourth set of light sources of the plurality of light sources are turned on,

wherein the first, second, third, and fourth sets of light sources share no light source.

19 . The non-transitory tangible computer-readable storage medium of claim 18 , wherein the first set of light sources comprises a first light source,

wherein the second set of light sources comprises a second light source horizontally adjacent to the first light source,

wherein the third set of light sources comprises a third light source vertically adjacent to the first light source, and

wherein the fourth set of light sources comprises a fourth light source diagonally adjacent to the first light source.

20 . The non-transitory tangible computer-readable storage medium of claim 16 , wherein the computer-executable instructions when executed further cause the processor to generate a directivity filter that represents light diffusion characteristics of the plurality of light sources, and

wherein generating the demura compensation factors for the plurality of light sources is further based on the directivity filter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 8, 2024
From: SHARMA, ATUL; NOSE, TAKASHI; FURIHATA, HIROBUMI; SUGIYAMA, AKIO
To: SYNAPTICS INCORPORATED
Reel/Frame 068226/0234 →
Continuity (2)
Provisional Application 63590868 · Oct 17, 2023
Related Publication 20250124884A1 · Apr 17, 2025
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