IP Library Granted Patent US 11,880,046
Granted Patent B2
US 11,880,046 · App. 17/059,737 · Granted Jan 23, 2024

Automatic polarization control device and method

Inventors: Jun Sik Kim (Daejeon, KR); Seung Seo Park (Daejeon, KR)
Assignees: SAI TECHNOLOGIES CORP.; Jun Sik Kim
G02B27/286G02B5/3016G02B27/288H04N23/54H04N23/55
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Quick Facts
Patent No.
US 11,880,046
App. No.
17/059,737
Granted
Jan 23, 2024
Kind
B2
Abstract

An automatic polarization control device and a method thereof are proposed. More particularly, the automatic polarization control device and the method thereof is provided to control a penetrated polarization direction of light incident on a camera by using electricity and generate a polarization image desired by a user.

Claims (33)

1. An automatic polarization control device, the device comprising:

a first liquid crystal for polarizing a penetrated polarization component according to an applied voltage by rotating at a predetermined angle;

a polarization controller for controlling a voltage applied to the first liquid crystal a first polarizing filter provided at a rear of the first liquid crystal so as to fix a penetrated polarization direction and penetrating incident light polarized in the penetrated polarization direction;

an image sensor provided at a rear of the first polarizing filter and imaging the penetrated light passing through the first liquid crystal and the first polarizing filter;

a processor performing image processing for the penetrated light imaged by the image sensor;

an image storage for storing an image that is image-processed by the processor;

an image design part for designing an image processing sequence so as to acquire an optimal polarization image according to a purpose of use for the image processing and controlling the polarization controller and the processor according to the designed image processing sequence; and

an image determination part for comparing polarization images of various angles according to a design of the image design part to select the polarization images suitable for the purpose of use for the image processing, or generating an image suitable for the purpose of the image processing based on the polarization images of various angles,

wherein the image determination part generates an image suitable for the purpose of use by applying relative contributions based on polarized images of various angles,

wherein the relative contributions are calculated by making polarized light having a polarization conversion angle of β angle incident, applying a voltage V to the first liquid crystal, putting the polarizing filter in a state of penetrating vertically polarized light, measuring light intensity La{circumflex over ( )} with a light sensor, putting the polarizing filter in a state of penetrating horizontally polarized light, measuring light intensity Lb{circumflex over ( )} with the light sensor, or

the relative contributions are calculated by making horizontally polarized light incident, applying a voltage Vβ to the first liquid crystal, rotating the polarizing filter at the angle where light intensity of a light sensor is the maximum, measuring an angle from the horizontal to an angle at which the light intensity is the maximum to store as a β angle, measuring the light intensity of the light sensor at the angle where the light intensity is the maximum to store as La{circumflex over ( )}, rotating the polarizing filter in a state perpendicular to the angle where the light intensity is the maximum to measure the light intensity of the light sensor and store as Lb{circumflex over ( )}, putting the polarizing filter in a state in which the horizontally polarized light is penetrated, measuring light intensity Lb{circumflex over ( )} in the light sensor,

wherein, when incident light is incident to the first liquid crystal, a polarization component rotates β degrees and is emitted from the first liquid crystal according to the voltage applied to the first liquid crystal, and as emitted light passes through the first polarizing filter, only a component corresponding to the penetrated polarization direction of the first polarizing filter is emitted, so that the emitted light is imaged by the image sensor.

2. The device of claim 1 , wherein the first polarizing filter comprises a plurality of regions where the penetrated polarization direction is fixed for each region, and

there are at least two types of the penetrated polarization direction.

3. The device of claim 2 , further comprising:

a second liquid crystal provided between the first polarizing filter and the image sensor and polarizing the penetrated polarization component according to the applied voltage; and

a second polarizing filter provided between the second liquid crystal and the image sensor so as to fix the penetrated polarization direction and penetrating the incident light polarized in the penetrated polarization direction.

4. The device of claim 1 ,

wherein the automatic polarization control device comprises:

a second liquid crystal provided between the first polarizing filter and the image sensor and polarizing the penetrated polarization component according to the applied voltage; and

a second polarizing filter provided between the second liquid crystal and the image sensor so that the penetrated polarization direction is fixed and the incident light polarized in the penetrated polarization direction is penetrated, and

wherein the first polarizing filter is provided with a plurality of regions where the penetrated polarization direction is fixed for each region.

5. The device of claim 1 , wherein the image determination part generates an image by using any one calculation selected from among maximum pixel value calculation, minimum pixel value calculation, image calculation of an absolute value of a polarization difference, and polarization difference image calculation for each color, the calculation being based on a plurality of polarization images.

6. An automatic polarization control method using an automatic polarization control device, the device comprising: a first liquid crystal for polarizing a penetrated polarization component according to an applied voltage by rotating at a predetermined angle; a polarization controller for controlling a voltage applied to the first liquid crystal; a first polarizing filter provided at a rear of the first liquid crystal so as to fix a penetrated polarization direction is fixed and penetrating incident light polarized in the penetrated polarization direction; an image sensor provided at a rear of the first polarizing filter and imaging the penetrated light passing through the first liquid crystal and the first polarizing filter; a processor performing image processing for the penetrated light imaged by the image sensor; an image storage for storing an image that is image-processed by the processor; an image design part for designing an image processing sequence so as to acquire an optimal polarization image according to a purpose of use for the image processing and controlling the polarization controller and the processor according to the designed image processing sequence; and an image determination part for comparing polarization images of various angles according to a design of the image design part to select the polarization images suitable for a situation ahead or the purpose of use for the image processing, or generating an image suitable for the situation ahead or the purpose of the image processing based on the polarization images of various angles, the method comprising:

designing an optimal polarization image for acquiring the optimal polarization image according to the purpose of use by the image design part;

processing an image in which the processor controls the polarization controller according to a design of the designing of the optimal polarization image to perform the image processing for a required image; and

acquiring an optimal image for comparing the polarization images of various angles according to the design of the image design part to select the polarization images suitable for the situation ahead or the purpose of use for the image processing, or generating an image suitable for the purpose of use by applying relative contributions based on the polarization images of various angles,

wherein the relative contributions are calculated by making polarized light having a polarization conversion angle of β angle incident, applying a voltage V to the first liquid crystal, putting the polarizing filter in a state of penetrating vertically polarized light, measuring light intensity La{circumflex over ( )} with a light sensor, putting the polarizing filter in a state of penetrating horizontally polarized light, measuring light intensity Lb{circumflex over ( )} with the light sensor, or

the relative contributions are calculated by making horizontally polarized light incident, applying a voltage Vβ to the first liquid crystal, rotating the polarizing filter at the angle where light intensity of a light sensor is the maximum, measuring an angle from the horizontal to an angle at which the light intensity is the maximum to store as a β angle, measuring the light intensity of the light sensor at the angle where the light intensity is the maximum to store as La{circumflex over ( )}, rotating the polarizing filter in a state perpendicular to the angle where the light intensity is the maximum to measure the light intensity of the light sensor and store as Lb{circumflex over ( )}, putting the polarizing filter in a state in which the horizontally polarized light is penetrated, measuring light intensity Lb{circumflex over ( )} in the light sensor.

7. The method of claim 6 , wherein the relative contributions are calculated by combining equations a=La{circumflex over ( )}/(La{circumflex over ( )}+Lb{circumflex over ( )}) and b=Lb{circumflex over ( )}/(La{circumflex over ( )}+Lb{circumflex over ( )}), where, a and b are the relative contributions.

8. The method of claim 6 , wherein the acquiring of the optimal image (S 30 ) calculates L1(β) and L2(β+90 degrees) by combining L1#=a(β)*L1(β)+b(β+90 degrees)*L2(β+90 degrees) and L2#=a(β+90 degrees)*L2(β+90 degrees)+b(β)*L1(β), where L1# is a pixel light intensity value of the penetrated light L1{circumflex over ( )} in the image sensor ( 600 ), L2# is a pixel light intensity value of the penetrated light L2{circumflex over ( )} in the image sensor ( 600 ), L1, L2, L1{circumflex over ( )}, and L2{circumflex over ( )} are light intensity of each polarization component, and a, b are the relative contributions, and generates an image suitable for the purpose of use by using this calculation.

9. The method of claim 6 , wherein the acquiring of the optimal image (S 30 ) calculates L1(β) and L2(β+90 degrees) by combining L1#(β)=a(β)*L1(β)+b(β+90 degrees)*L2(β+90 degrees) and L1(0 degrees)+L2(90 degrees)=L1(β)+L2(β+90 degrees), where L1# is a pixel light intensity value of the penetrated light L1{circumflex over ( )} in the image sensor, L1 and L2 are light intensity of each polarization B component, and a, b are the relative contributions, and generates an image suitable for the purpose of use by using this calculation.

10. The method of claim 6 , wherein the acquiring of the optimal image generates the image suitable for the purpose of use by using any one calculation selected from among maximum pixel value calculation, minimum pixel value calculation, image calculation for an absolute value of a polarization difference, and polarization difference image calculation for each color, the calculation being based on a plurality of polarization images, wherein difference calculation of the image calculation of an absolute value of a difference including the image calculation for the absolute value of the polarization difference, and the polarization difference image calculation for each color comprises division calculation and log difference calculation.

Assignments (2)
CHANGE OF NAME Recorded Nov 24, 2023
From: SAI CORP.
To: SAI TECHNOLOGIES CORP.
Reel/Frame 065675/0629 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2020
From: KIM, JUN SIK; PARK, SEUNG SEO
To: SAI CORP.; KIM, JUN SIK
Reel/Frame 054499/0482 →
Priority Claims (1)
KR 10-2018-0072491 · Jun 25, 2018 · national
Continuity (1)
Related Publication 20210215944A1 · Jul 15, 2021